Three-dimensional Hydrogels of Alginate/chitosan Semi-interpenetrating Polymer Networks and Nanocelluloses

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Abstract The hydrogels are advanced materials used in biomedical applications during wound healing, controlled drug release and to prepare scaffolds. In this work are prepared hydrogels of alginate/chitosan (Alg/Ch) semi-interpenetrating polymer networks (semi-IPN’s) and nanocelluloses. The hydrogels after preparation by freeze drying are namely simply as gels. The cellulose nanocrystals (CNC’s) are obtained from acid hydrolysis of bleached Eucalyptus pulps and oxidized cellulose nanocrystals (CNCT’s) prepared by (2,2,6,6-tetramethylpiperidin-1-yl)oxyl radical catalyzed reaction as known as TEMPO reaction. The cellulose nanofibers (NFC’s) are obtained from mechanical shearing of cellulose pulps and oxidized NFC’s by TEMPO-mediated reaction (NFCT’s). The nanocellulose suspension and gels are characterized by FTIR at ATR mode, TGA, XRD, TEM, SEM, X-ray computed microtomography (micro-CT) and DMTA. The addition of CNC’s, NFC’s, CNCT’s or NFCT’s in the microstructure of gels increases their dimensional stabilities. The best results are obtained when CNCT’s and NFCT’s are added. The mechanical properties and dimensional stability of Alg/Ch semi-IPN’s increase after controlled thermal post-treatment. The heating during thermal post-treatment boosts the physicochemical interactions in the microstructures of semi-IPN’s. The biological assays show biocompatibility of fibroblast cells on the substrates, and differentiation and proliferation up seven days. The optimized mechanical properties, dimensional stability and biocompatibility of the gels studied in this work are important parameters for potential biomedical applications of these biomaterials.
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In this work are prepared hydrogels of alginate/chitosan ( Alg / Ch ) semi-interpenetrating polymer networks (semi-IPN’s) and nanocelluloses. The hydrogels after preparation by freeze drying are namely simply as gels. The cellulose nanocrystals (CNC’s) are obtained from acid hydrolysis of bleached Eucalyptus pulps and oxidized cellulose nanocrystals (CNCT’s) prepared by (2,2,6,6-tetramethylpiperidin-1-yl)oxyl radical catalyzed reaction as known as TEMPO reaction. The cellulose nanofibers (NFC’s) are obtained from mechanical shearing of cellulose pulps and oxidized NFC’s by TEMPO-mediated reaction (NFCT’s). The nanocellulose suspension and gels are characterized by FTIR at ATR mode, TGA, XRD, TEM, SEM, X-ray computed microtomography (micro-CT) and DMTA. The addition of CNC’s, NFC’s, CNCT’s or NFCT’s in the microstructure of gels increases their dimensional stabilities. The best results are obtained when CNCT’s and NFCT’s are added. The mechanical properties and dimensional stability of Alg/Ch semi-IPN’s increase after controlled thermal post-treatment. The heating during thermal post-treatment boosts the physicochemical interactions in the microstructures of semi-IPN’s. The biological assays show biocompatibility of fibroblast cells on the substrates, and differentiation and proliferation up seven days. The optimized mechanical properties, dimensional stability and biocompatibility of the gels studied in this work are important parameters for potential biomedical applications of these biomaterials. Cellular & Molecular Neuroscience hydrogels alginate chitosan nanocelluloses biocompatibility Figures Figure 1 Figure 2 Figure 3 Figure 4 Figure 5 Figure 6 Figure 7 Highlights Advanced applications of hydrogels in biomedical fields Nanomaterials for biomedical applications Bio-based polymers and their biocompatibility in human body Green chemistry and unexpensive and exotic materials in emerging countries Optimization of laboratory trials for industrial scale-up Introduction Synergistic effects arise when polymers are blended to prepare interpenetrating or semi-interpenetrating polymer networks also known as IPN’s or semi-IPN’s, respectively. These polymer networks enable preparation of materials and controlled and advanced properties (Naseri et al., 2016). The chitosan ( Ch ) is a polyelectrolyte obtained by physicochemical modification reaction of chitin and generally used to prepare biocompatible substrates (Li et al., 2005; Zhou, 2011). The alginate ( Alg ) is an anionic polyelectrolyte naturally biosynthesized by brown algaes. The Ch and Alg are some main polyelectrolytes used to prepare biocompatible materials. The polyelectrolyte complexes (PEC’s) or polyelectrolyte macroion complexes (PMC’s) are prepared by the mixture of oppositely charged polymers. They can be used to prepare multifunctional hydrogels and to obtain tunable physicochemical properties (Gabrovska et al., 2008). The microstructure of the hydrogels are kept mainly by electrostatic interactions. However, these kind of interactions are highly dependent of pH and ionic strength of the reaction medium (Berger et al., 2004). The Ch is a well known polymer due to its properties as biodegradability, biocompatibility and antimicrobiological activity (Lohani et al., 2014; Rinaudo, 2008). This polyelectrolyte is used in biomedical fields due to its ability to accelerate wound healing (Czaja et al., 2007). The Ch -based hydrogels can be prepared by crosslinking between tripolyphosphate and vinyl alcohol and functional groups of Ch chains (Berger et al., 2004). The microstructure of physically crosslinked Ch -based hydrogels are kept by electrostatic interactions between the negative charges of the crosslinking agents and positive charges of amine functional groups of Ch structure. However, the mechanical properties and dimensional stability of physically crosslinked hydrogels are limited by the charge density of the crosslinking agent and polyelectrolytes, the ionic strength and pH of the medium (Azzam et al., 2016). The covalently crosslinked hydrogels present strong bonds and three-dimensional networks (Senna et al., 2014; Senna and Botaro, 2017). The microstructure of these hydrogels allows effective diffusion of fluids and a minimum decrease of their mechanical properties and dimensional stability. These hydrogels show applications in biomedical fields, as for example, drug delivery systems and to prepare scaffolds. One drawback to use covalent crosslinking agent to prepare hydrogels is its degree of biocompatibility. Glutaraldehyde and glyoxal are good candidates as covalent crosslinking agents of Ch but they present neurotoxic (Betancor et al., 2006) and mutagenic effects (Murata-Kamiya et al., 1997). The genipin is an interesting natural and crosslinking agent to replace dialdehydes to prepare covalently crosslinked hydrogels (Mi et al., 2002). This chemical is an aglycone derived from iridoid glycoside also called geniposide and presents good cytocompatibility. However, the use of genipin in large scale is limited by its high price and limited availability in the nature. Some studies show effectiveness to improve the properties of Ch -based hydrogels through the formation of semi-IPN’s or IPN’s. These materials can be obtained by mixture of Ch and Alg at controlled conditions. The semi-IPN gels have taken considerable attention of the scientific community due to their improved properties obtained by synergistic effects (Berger et al., 2004; and Lohani et al., 2014). The Ch -based semi-IPN gels have also been described more effective during cell culture assays than gels prepared only from Ch (Berger et al., 2004). Rani et al. (2011) describe the controlled drug release of chitosan/glycine/glutamic acid IPN gels crosslinked by glutaraldehyde. Their results were promising for biomedical applications. It was observed that the degree of swelling and releasing of drugs are limited by the pH, the degree of crosslinking in the IPN structure and weight ratio (wt%) of the polymers. Reddy et al. (2009) synthesized chitosan/ghatti gum IPN’s by the emulsion technique and glutaraldehyde as crosslinking agent. The microparticles were used for controlled release of sodium diclofenac. It was observed drug releasing up to 12 h in the intestine. Li et al. (2009) show the cytocompatibility and cell viability of chitosan/alginate scaffolds. The cell morphology, proliferation and bioadhesion on the material were studied in vitro . The analyzes of proteins extracted during cell growth showed the production of a specific type of collagen. This behavior was not observed on the crosslinked Ch- based substrate itself. This study suggests that chitosan/alginate semi-IPN’s enable cell proliferation, increase the expression of the HTB-94 chondrocyte phenotype and can be used as an alternative to prepare scaffolds. However, any mechanical measurement was described. Rani et al. (2011) carried out the synthesis of chitosan/alginate semi-IPN’s to be used as scaffolds. Silver nanoparticles were added in the microstructure as antibacterial agent. It can be postulate based on their results the potential use of this kind of material in biomedical areas and the needs of complementary studies as mechanical and thermal properties, and porous microstructures of chitosan/alginate hydrogels. The first part of our research project was published in a recent paper (Siqueira et al., 2019) in which was studied alginate/nanocelluloses hydrogels. This article can be considered primary studies towards optimization of thermal and mechanical properties, experimental procedures and biological features. The alginate/nanocellulose hydrogels were submitted to cytotoxicity and biocompatibility assays. However, the use of sodium alginate presents some limitations as price, synthesis, availability and mechanical properties. Based on these assumptions additional studies to improve or to impart new properties into these materials are needed. In this study it was decided to add chitosan (cationic polyelectrolyte) and alginate (anionic polyeletrolyte) to prepare semi-interpenetrating polymer networks (semi-IPN’s) and nanocelluloses to optimize the material, to impart new properties and to increase some others not presented when only alginate and nanocelluloses were used to prepare biomaterials. Some advantages of the blend between these polyelectrolytes are related to economical concerns (actually the price of alginate is 1.5 higher than chitosan), mechanical properties and biocompatibility effects ( Ch is a polyelectrolyte derived from chitin which present impressive properties and interesting biocompatibility). The material prepared by alginate/chitosan presents classical and rich theoretical and experimental information about physicochemistry domains and the drawbacks related to its preparation. This article putt other readers at close contact with very important theories (physycochemistry of solution, suspension, and polyelectrolytes; colloidal sciences; and surface and interface physicochemical interactions, etc.) to prepare advanced materials, and the experimental limitations related by the structures of these chemicals at molecular level. CNC’s and NFC’s were added in the gels at different mixture order, pH, ionic strength and concentration in this work. Un- and modified nanocelluloses (TEMPO oxidized) were used to increase or to impart new properties. It is expected that the careful empirical studies and characterization techniques evidence the benefits and synergistic effects between the components of the semi-IPN’s. The addition of nanocelluloses in Alg/Ch semi-IPN’s, mainly oxidized cellulose nanocrystals and nanofibrils (CNCT’s and NFCT’s, respectively) presented the very promising results. These features are very important for structural applications, transport of biological fluids and nutrients; and cell attachment, growth, differentiation and proliferation. To the best of our knowledge any study was still published describing all these parameters (biocompatibility, addition of un- and modified nanocelluloses, mechanical and thermal properties, dimensional stability, porous structures and physicochemical interactions). These materials also present remarkable ecological and economical concerns and advances towards sustainability and green chemistry. The Ch is a polyelectrolyte slightly soluble in water and potential candidate for application in biomedical engineering. Its structure is formed by β-(1-4)-2-amino-2-deoxy-D-glucose units. The polymer chains of Ch are similar to cellulose and in acidified medium Ch is a polycation due to protonation of amine groups. The Alg is an anionic polyelectrolyte and its linear chain is soluble in aqueous media. The Alg is well known due to their healing and anti-tumoral properties. It consists of β-D-manuronic acid (M) and α-L-guluronic acid (G) units linked by glycosidic bonds. Alg is considered a polyanion at neutral or alkaline medium due to carboxyl groups in its structure. The physicochemical interactions between Alg and Ch mainly through electrostatic interactions is a challenge. This blend can be an interesting candidate to prepare stable hydrogels and to impart improved structural homogeneity, dimensional stability and mechanical and biological properties when compared to other prepared from Alg or Ch themselves or by polymers derived from sources as petroleum (Li et al., 2005). Materials And Methods Materials The bleached Eucalyptus pulp used in this work was supplied by Suzano Papel e Celulose (Brazil). Sodium hypochlorite (NaClO), 2,2,6,6-tetramethylpiperidin-1-oxyl solution (TEMPO radical at 98%), sodium bromide (NaBr), hydrochloric acid (HCl at 37%), sulfuric acid (H 2 SO 4 at 98%) and sodium hydroxide (NaOH) were used. All these chemicals were supplied by Sigma Aldrich. The hydrogels were prepared with Alg of high molecular weight supplied by Sigma-Aldrich (M w = 1 x 10 6 g.mol -1 , M/G ratio = 1.56 and viscosity of 250 cP at 25°C and 2 wt%). The Ch was supplied by Phytomare (M w < 100 kDa and average degree of deacetylation of 90%). Glacial acetic acid (C 2 H 4 O 2 at 99.8%) and calcium chloride (CaCl 2 .2H 2 O) were purchased of Vetec Química Fina Ltda (Brazil). The phosphate buffer solution (PBS) was prepared by mixture of sodium chloride (NaCl), potassium chloride (KCl) and potassium phosphate (K 3 PO 4 ). All these chemicals were supplied by Synth. The sodium phosphate monohydrate (Na 3 PO 4 .H 2 O) supplied by Vetec Química Fina Ltda and orthophosphoric acid (H 3 PO 4 at 85%) supplied by Neon. All these chemicals were supplied at pure degree and used as received. Methods Extraction, oxidation reaction and characterization of nanocelluloses The cellulose nanofibrils (NFC’s) and nanocrystals (CNC’s) were extracted and isolated, respectively, from bleached kraft cellulose pulp. The NFC’s were obtained from mechanical shearing. The bleached cellulose fibers were suspended in water at 2 wt% and grounded in a Supermass Colloider mill (MKZA10-20J CE Masuko Sangyo, Japan). The CNC’s were also obtained from bleached kraft pulp in the Laboratory of Physicochemistry of UFMG (Brazil). The hydrolysis reaction was carried out in sulfuric acid solution at 65% (v/v), 50 o C and constant mechanical stirring for 50 min. Three dilutions were performed with milli-Q water to stop the reaction. The suspension was submitted to centrifugation steps to remove the excess of acid. The supernatant was eliminated and the precipitate solubilized, and added in dialysis membranes. Changes of water of dialysis bath were carried out up to neutral pH. The suspension of CNC’s was submitted to ultrasound treatment for 2 min (Unique Sonicator, 40 kHz) and filtered through membranes of acetate cellulose (Sartorius). The NFC’s and CNC’s were oxidized by TEMPO catalyzed reaction. The oxidation of hydroxyl groups in nanocelluloses was performed based on the method described by Saito and Isogai (2004). Cellulose pulp at 1.5 wt% was used to prepare TEMPO-oxidized cellulose nanofibers (NFCT’s). It was added 0.016 g of TEMPO radical in the aqueous reaction medium, 0.100 g of NaBr and 5.35 mL of NaClO at 14 wt%. The pH of the medium was kept at 10 by addition of sodium hydroxide solution. The NFCT’s were washed by distilled water and centrifugation steps up to neutral pH. At the end suspensions at 2 wt% of NFCT’s were obtained. Suspension of TEMPO-oxidized cellulose nanocrystals (CNCT’s) was prepared based on the experimental procedures described by Saito et al. (2007). The 0.100 mmol TEMPO radical and 1.00 mmol NaBr were solubilized in water per gram of cellulose. The suspension of CNC’s at 2 wt% were added into a three bottom neck flask. The pH of the suspension was kept at 10 by the addition of sodium hydroxide solution. The oxidation reaction was started by addition of sodium hypochlorite (NaClO). The CNCT’s were washed by centrifugation steps and putted in dialysis membranes (6-8 kDa) up to neutral pH. Conductometric titrations were performed as described by Saito and Isogai (2004) to determine the degree of oxidation (DO) of the nanocelluloses. Approximately 50.0 mg of TEMPO oxydized nanocelluloses were suspended in 0.0500 mol.L -1 hydrochloric acid solution and the pH adjusted up to 2.7 to protonate acid groups present on the nanocelluloses. The titration was carried out by dropwise of 0.0100 mol.L -1 sodium hydroxide solution. Alg / Ch semi-IPN’s To prepare Alg/Ch semi-IPN’s a three-dimensional network is desirable between carboxylic groups in Alg and amine groups in Ch structure. Some physicochemical interactions, as for example between divalent metal cations (M 2+ ), as calcium ions, and negatively charged groups as carboxylate contribute to the formation of the microstructure. Alg/Ch /nanocellulose gels were prepared in aqueous media. Both polyelectrolytes present ionic functional groups in their chains at specific experimental conditions. This is possible at the pH close to the pKa values of the functional groups (Azzam et al., 2016; Li et al., 2009; Siqueira et al., 2019; Saito et al., 2007; Saito and Isogai, 2004; Senel et al., 2000). The Alg shows pKa value in the range of 3.38 and 3.65 for sequences of M and G, respectively, and Ch pKa value close to 6.3. In this work the optimized pH to prepare PEC’s and semi-IPN’s is in the range between 3.4 and 6.3. It was decided to use an optimized pH of 5.3 after trials. The Alg- and Ch- based gels were also crosslinked by calcium ions (Ca 2+ ) to enable comparative data (blank samples). The Ch solution was prepared at pH 5.3 and 2.0 wt% and Alg solution at pH 3.8 and 2.0 wt%. The Alg and Ch solutions were slowly added under mild mechanical stirring (340 rpm) at 60 o C for 60 min. The PEC’s were cooled in liquid nitrogen and freeze dried for 48 h. The gels were added in a bath of 2.0 wt% of calcium chloride solution for 15 min. At this time the interactions between negatively charged groups (carboxylate groups) and Ca 2+ can takes place and the microstructure of Alg/Ch semi-IPN’s be formed. It is worth pointed out that trials to determine an optimized contact time of Alg/Ch semi-IPN’s in calcium chloride solution bath were previously performed (between 5 min and 24 h). The Alg/Ch semi-IPN’s crosslinked by calcium ions were washed in distilled water to remove excess, cooled in liquid nitrogen and freeze dried for 48 h. Nanocellulose suspensions at 1.14 wt% were first dispersed in sodium Alg solution (2.0 wt%) for synthesis of Alg/Ch/nanocellulose semi-IPN’s. The weight ratio between nanocelluloses, Alg and Ch in these studies are shown in Table 1. These mixtures were also kept under heating and stirring for 60 min, cooled and freeze dried for 48 h. The gels were added in 2.0 wt% calcium chloride bath for 15 min. The crosslinked materials were washed by distilled water to remove excess of calcium ions and freeze dried for 48 h. Tab. 1: Weight ratio of nanocelluloses (wt%) for synthesis of Alg/Ch semi-IPN’s. Sample Ch (g) Alg (g) Nanocelluloses (g) Alg/Ch/ nanocelluloses Alg­/Ch 0.20 0.20 0.00 0.00 Alg­/Ch/ CNC10 0.20 0.20 0.04 0.10 Alg­/Ch/ CNC36 0.20 0.20 0.22 0.55 Alg­/Ch/ CNC50 0.20 0.20 0.40 1.00 Alg­/Ch/ CNCT10 0.20 0.20 0.04 0.10 Alg­/Ch/ CNCT36 0.20 0.20 0.22 0.55 Alg­/Ch/ CNCT50 0.20 0.20 0.40 1.00 Alg­/Ch/ NFC10 0.20 0.20 0.04 0.10 Alg­/Ch/ NFC36 0.20 0.20 0.22 0.55 Alg­/Ch/ NFC50 0.20 0.20 0.40 1.00 Alg­/Ch/ NFCT10 0.20 0.20 0.04 0.10 Alg­/Ch/ NFCT36 0.20 0.20 0.22 0.55 Alg­/Ch/ NFCT50 0.20 0.20 0.40 1.00 * Alg/Ch/Nanocelluloses10: 10% of nanocelluloses and 90% of alginate/chitosan; Alg/Ch/nanoceluloses36: 36% of nanocelluloses and 64% of alginate/chitosan; and Alg/Ch/Nanoceluloses50: 50% of nanocelluloses and 50% of alginate/chitosan. Characterization of nanocelluloses, alginate ( Alg ), chitosan ( Ch ) and Alg/Ch semi-IPN gels Fourier Transformed Infrared Spectroscopy at Attenuated Total Reflection mode (FTIR-ATR) The infrared spectra of nanocelluloses, polyelectrolyes and semi-IPN’s were recorded in a spectrometer (Perkin-Elmer Spectrum) at room temperature. The parameters were wavelength range between 4000 and 500 cm -1 , resolution of 2 cm -1 and 20 accumulation scans. Thermogravimetric Analysis (TGA) Thermogravimetric analyzes of nanocelluloses and hydrogels were performed in a TGA– DTG-60 (Shimadzu) and in alumina crucibles. The analyses were performed at heating rate of 10°C.min 1 and in the temperature range between 25 and 600°C. A nitrogen flow of 200 mL.min -1 was used during the scans. X-ray diffraction (XRD) The nanocelluloses and gels were analyzed by X-ray diffraction (diffractometer Shimadzu model XRD-6000). The parameters used were Cu Kα radiation (λ = 0.155428nm), voltage of 30 kV and current of 30 mA. The spectra were collected in the scanning mode of 2º.min -1 at Bragg angle (2θ) range between 5 and 50º. Dynamic Mechanical Thermal Analyses (DMTA) The mechanical properties of the gels were studied by DMTA (Netzch model 242). The analyses were carried out in the temperature range between 20 and 80ºC, heating rate of 3ºC.min -1 , 1 Hz frequency and initial load of 5 N. Two trials were carried out to study the thermomechanical properties of the samples: i) the samples were submitted to heating-cooling/heating-cooling cycles in the furnace of the apparatus (25-80ºC/25-80ºC); and ii) the samples were thermally post-treated in an oven at 80ºC for 4 h and after analyzed by DMTA. The storage and loss moduli (E’ and E’’, respectively) were obtained from the viscoelastic behavior of the samples. Scanning Electron Microscopy (SEM) The morphological characterization of gels was performed in a double-beam scanning electron microscope (FEI Quanta FEG 3D). The samples were cooled in liquid nitrogen to avoid deformation of the gels during fracture. These samples were fixed on supports and coated by carbon films of approximately 15 nm of thickness. The images were recorded at secondary electron mode and acceleration voltage of 20 kV. The micrographs obtained by SEM were also used to determine the average size of pores in the gels with the Image J software. Fifteen measurements were taken in each sample. X-ray computed microtomography (micro-CT) Analyses of the three-dimensional morphology of the samples were carried out after cryo-facture in liquid nitrogen in a microtomograph (SkyScan 1174 Bruker, Germany). The parameters used were 50 keV and 40 W of tungsten X-ray source. A CCD camera of 1.3 megapixel resolution was attached to the lens scintillator with a 1:6 zoom range. Projections were recorded between 0 and 360° at an angular increment of 0.50°. It were studied samples of Alg /Ch and CNCT’s or NFCT’s (at 50 wt%). A cross-section of approximately 12 mm edge length was selected and analyses recorded at 40 kV and 800 µA. The pixel size of approximately 10 µm was reached. Image reconstruction was performed using the Feldkamp algorithm. The visualization and quantitative analysis of the volumes were carried out with Thermo Scientific Avizo software (Thermo Fisher Scientific, Oregon - USA). Biological Assays The biocompatibility and cytotoxicity of L929 fibroblast cells on Alg/Ch semi-IPN’s will be published as soon as possible. This article presents indirect evidences of the potential use of these materials through analyses of bioadhesion and cell differentiation obtained from SEM images. The fibroblast cells were cultured on the surfaces of semi-IPN’s. Samples of (5x5x1) mm 3 were submitted to sterilization by ultraviolet radiation for 30 min. The gels were immersed in fetal bovine serum (FBS) for 1 h and added into cell suspension (5x10 6 cells.mL -1 ). The cell cultures were incubated at 37ºC for 7 days in CO 2 atmosphere. The gels were washed with phosphate buffer solution (PBS). The samples were immersed in ethanol and dried in desiccator with vacuum, coated by thin films of gold and observed in a SEM (Quanta FIB EGF 3D with FEI). Results And Discussion It is described in the literature that negatively charged carboxylate groups of Alg and positively charged amine groups of Ch interact in optimized physicochemical conditions. These polyelectrolytes give rise formation of polyelectrolyte macroion complexes (PMC’s) also known as polyelectrolyte complexes (PEC’s) (Berger et al., 2004; Isogai et al., 2011). It was used in this work Alg and Ch as polyelectrolytes and calcium chloride (CaCl 2 ) as crosslinking agent to prepare biocompatible materials due to economic and ecological concerns and towards a green chemistry. Figure 1 depicts ionic and/or secondary interactions in the microstructure of Alg/Ch and Alg/Ch/ nanocellulose semi-IPN’s. It is expected at least some types of interactions as: ionic or electrostatic interactions of carboxylate groups in Alg structure and calcium ions; interactions of carboxylate groups in TEMPO-oxidized nanocelluloses, carboxylate groups of Alg chains and calcium ions; secondary interactions (hydrogen bonds, van der Waals, induced and permanent dipole) of functional groups in the structure of Alg / Ch /nanocelluloses; ionic/electrostatic interactions of Alg and Ch ; and ionic/electrostatic interactions of carboxylate groups of CNCT’s and NFCT’s and amine groups of Ch . As stated and well explained and justified by French (2017) the repeating unit of cellulose is often considered to be cellobiose instead of glucose. This review presents some arguments regarding the repeating unit in cellulose molecules and crystals based on biosynthesis, shape, crystallographic symmetry, and linkage position. The statement that cellobiose could be the repeating unit of cellulose instead of glucose needs take some care when regarding the chemical bonds in the structure, reactivity and properties (Nishiyama et al. 2002; Kouwijzer et al. 1995). There is almost universal agreement that cellulose is a polymer of β-(1-4)-linked D-glucopyranosyl units and glucose is repeatedly added during biosynthesis of cellulose chains. One common argument used by some authors to consider cellobiose as the repeating unit of celullose is due to the fact that cellobiose is obtained by hydrolysis of cellulose. However, cellobiose is one of the products of acid hydrolysis and prolonged hydrolysis results at glucose. One report (JCBN, 1982) states that ‘‘polysaccharides composed of only one kind of monosaccharide are described as homopolysaccharides’’ and another report (JCBN, 1983) adds a statement that ‘‘The repeating unit in a homopolysaccharide is a sugar residue”. This review support the glucose residues as the repeating unit of cellulose and also in agreement with International Union of Pure and Apllied Chemistry (IUPAC) and International Union of Biochemistry and Molecular Biology (IUBMB). It’s worth pointed out that Figure 1 is just an attempt to describe the complex structure of Alg/Ch /nanocellulose semi-IPN’s, and possible physicochemical interactions between their components. Any picture could describe completely the microstructure formed. In this paper it was considered glucose as the repeating unit of cellulose to prepare these pictures even if some between then present more than one glucose unit. The pictures are based on articles that describe the egg-box model as one possibility to explain these interactions. One possibility is the formation of dimers around cation ions added in polyelectrolyte solutions to prepare hydrogels (Li et al., 2007; Donati et al., 2005). Fig. 1: Physicochemical interactions of Alg , Ch and nanocelluloses in the microstructure of the gels: (A) ionic crosslinking of Alg and calcium ions; (B) ionic crosslinking of Alg , TEMPO-oxidized nanocelluloses and calcium ions; (C) secondary interactions of the functional groups of Alg , Ch and nanocelluloses; (D) ionic interactions of Alg and Ch groups; and (E) ionic interactions of negatively charged groups of CNCT’s and NFCT’s and positively charged groups of Ch chains. The materials synthesized can be considered physical gels due to reversible feature of the interactions in their microstructures (non-covalent bonds). Figure 2 presents images of the morphology and dimensional stability of the Alg/Ch/nanocellulose semi-IPN’s after optimization of physicochemical parameters as mixing order, concentration, pH, ionic strength and temperature. The Support Information (SI 1 ) shows the photographs of Alg/Ch semi-IPN’s without addition of nanocelluloses. Fig. 2: Images of gels after freeze drying: (A) and (B) Alg/Ch /NFCT (at 50 wt%); and (C) and (D) Alg/Ch /CNCT (at 50 wt%). The freeze-dried and thermally post-treated gels present good dimensional stability. However, their surface areas show some insights. The surface of gel at contact with the mold and air during preparation present smooth and rough surfaces, respectively. The microstructure shows slow shrinkage after thermal post-treatment at 80 o C for 4 h, but the materials still kept their dimensional stabilities. It is worth pointed out that porous structures and rough surface areas are very interesting for nutrient flux and cell attachment, respectively. The shrinkage of some samples is probably due to water elimination, reconformation of polyelectrolytes (extended-coil interconversion), and increase of ionic crosslinking density or secondary interactions in the microstructure of the gels. All these phenomena can contribute to decrease the distance between components in the microstructure and to increase physicochemical interactions between them (ionic, electrostatic, van der Waals, permanent and induced dipole). The microstructure is kept intact when compared with the gels without addition of nanocelluloses. After some optimization studies it were added 36 and 50 wt% of nanocelluloses to prepare dimentionatly stable Alg/Ch/nanocellulose semi-IPN’s. Figure 3 presents FTIR at ATR mode analyses of Alg and Ch polyelectrolytes (Figure 3.A) and ionic crosslinked Alg/Ch/ nanocellulose gels (Figure 3.B). The Support Information (SI 2 ) shows FTIR spectra for un- and oxidized nanocelluloses. The high degree of desacetylacetion of Ch used in this work ( ca. 93%) to prepare the gels enables electrostatic interactions between Alg and Ch , and gives rise the formation of semi-IPN’s whose present good dimensional stability in water and phosphate buffer solution (PBS). The blend Alg/Ch/ oxidized nanocellulose semi-IPN’s show better results. The addition of nanocelluloses at 36 and 50 wt% were beneficial to keep the dimensional stability. The ionic crosslinking due to calcium ions was also important for interactions in the Alg and Alg/ nanocellulose phases (calcium ions/carboxylate groups). The interactions between the crosslinked Alg or Alg / nanocelullose phases and Ch phase allow formation of a complex and pore network in the gel microstructures. As can be observed in the FTIR spectra all the main absorption bands of Alg , Ch and nanocelluloses are also observed in the spectra of each constituent itself even if some bands show overlapping or small displacement of wavelength absorption. These spectra show evidences of ionic or secondary interactions and formation of physical gels. Any new absorption band was observed when the components and the blends are compared which is an evidence that covalent bonds were not formed (chemical gels). Fig. 3. (A) FTIR spectra at ATR mode of Alg and Ch polyelectrolytes and (B) crosslinked Alg/Ch /nanocellulose semi-IPN’s. The main absorption bands of crosslinked Alg are a broad absorption band in the wavelength of 3600 and 3200 cm -1 attributed to stretching vibrations of O-H groups; an absorption band at 2900 cm -1 attributed to the stretching vibration of the C-H bonds of methyl groups; and two intense absorption bands of carboxyl groups (-COO - ) at 1600 and 1411 cm -1 attributed to asymmetric and symmetric vibrations, respectively (Siqueira et al., 2019). The main absorption bands of Ch are broad absorption bands in 3600 and 3300 cm -1 attributed to axial stretching vibration of -OH and –NH groups; the absorption bands at 2940 and 2880 cm -1 attributed to symmetric and asymmetric axial vibration of –CH groups, respectively; an intense absorption band at 1660 cm -1 attributed to stretching vibration of C=O (amide I) that overlaps the absorption band at 1586 cm -1 attributed to stretching vibration of –NH groups; an absorption band at 1419 cm -1 attributed to axial stretching vibration of C-N that overlaps the band at 1377 cm -1 attributed to angular stretching vibration of –NH groups. In the wavelength region of 1200 and 800 cm -1 the absorption bands of Alg and Ch are attributed to polysaccharide moieties. The nanocellullose spectra (SI 2 ) show some main absorption bands at 3300 cm -1 attributed to stretching vibrations of –OH groups; at 2900 cm -1 attributed to stretching vibrations of –CH groups; at 1610 and 1411 cm -1 attributed to symmetric and asymmetric stretching vibrations of carboxylate groups, respectively; and at 1430 cm -1 attributed to stretching of methyl groups. The absorption bands in the range 1200 to 920 cm -1 are attributed to stretching vibrations of the polysaccharide structures as also observed in Alg and Ch spectra (Azzam et al., 2016). There are some evidences that the interactions between Alg , Ch and nanocelluloses are secondary interactions based on FTIR analyses. In this work the Alg/Ch/ nanocellulose gels show broadening and overlapping of the absorption band at 1600 cm -1 attributed to stretching vibrations of carboxyl and amine groups. Other evidence is observed at 1400 cm -1 also attributed to carboxyl and amine groups. The absorption band in the range 3200 to 3600 cm -1 shows a broadening in Alg/Ch /nanocellulose gels. This band is attributed to stretching vibrations of –OH and –NH groups, and hydrogen bonds. The displacement and overlapping of characteristic absorption bands of Alg , Ch and nanocelluloses when compared to the absorption bands of the gels are evidences of secondary interactions between functional groups (mainly carboxylate and amine). Any new absorption band was observed in the gels spectra as postulated before. The high charge density of these polyelectrolytes give rise mainly to formation of physicochemical interactions between them as also observed by Lawrie et al. (2007). Figure 4.A presents X-ray diffractogram patterns of Alg and Ch, and Figure 4.B crosslinked Alg/Ch and Alg/Ch /nanocellulose gels at 50 wt% concentration. The diffractograms show characteristic patterns of polymer materials (when compared as for example with the fine and well defined patterns for metallic or ceramic materials), and more specifically polysaccharides structures (French, 2014). The Ch diffractogram shows two main peaks at aproximatelly 2θ = 10.3° and 19.8° attributed to hydrated and anhydrous crystals, respectively (Li, X., et al., 2009; Chen et al., 2008). The Alg presents broaden diffraction peaks attributed to guluronic (G) and manuronic (M) blocks. The main peaks at approximately 2θ = 13.4° (110) and 22.9° (002) are attributed to diffraction plans crystalline regions of Alg (Li et al., 2007). The nanocelluloses present main peaks at approximately 34.5º (004), 22.6º (200), 16.5º(110) and 14.5º (1-10) (Zeng et al.,2021; Siqueira et al., 2019; French, 2017 and 2014; Sun et al., 2016; Brito et al., 2012; Lahiji et al., 2010; Pääkö et al., 2007). XRD patterns can show small displacements of 2θ values, intensity and/or crystalline/non-crystalline ratio when articles are compared due to experimental procedures, physicochemical parameters for synthesis of polymers or cellulose source for extraction of CNC’s and preparation of CNF’s. Some tools as the software and model used during data interpretation and the experimental parameters for sample preparation and parameters for XRD analyses can also affect the results. As one example and stated by French (2014) the patterns calculated by Mercury ® program are isotropic but there is no way to input crystallite shape information that can affect the relative peak heights and widths. In this work X-ray analyses are used for comparison purposes, and to take some additional qualitative information about the microstructural organization of the complex blends between un- and crosslinked Alg / Ch /nanocelluloses to prepare hydrogels and their biocompatibility. Attempts to take quantitative information on XRD analyses will be issues of future works as well as cell viability and other correlations between microstructure and biological features. Figure 4. X-ray diffractograms: (A) alginate and chitosan; and (B) crosslinked Alg/Ch /nanocellulose semi-IPN gels. As observed crosslinked Alg/Ch gels and mainly Alg diffractogram pattern without addition of nanocelluloses have broaden diffraction peaks suggesting defective crystallization and probably low crystallinity. Smitha et al. (2005) stated based on their studies that the mixture of Alg and Ch decreases the crystallinity when compared to the crystallinity of this polymers. The crosslinked Alg/Ch gels show lower cristallinity than pure Ch and Alg probably due to fast physicochemical interactions with calcium ions and the gelation process. Li et al. (2009) observed that typical peaks of Ch disappeared after mixture with Alg and the PEC’s showed an amorphous morphology similar to Alg . It was stated that the introduction of Alg into Ch disrupted the crystalline structure of Ch . Li et al. (2007) also observed by XRD analyses formation of junction zones with different crystallinity in Ca-alginate gels. This was confirmed by the measurements of Ca-alginate gel beads prepared at different pH and slow crosslinking rate, which leads to a higher crystallinity and more perfect ordering. Reversible aggregation of junction zones and their impacts on XRD patterns were also observed during dehydration and rehydration (or swelling). Nagahama et al. (2009) observed based on XRD results that there was good compatibility and interaction between gelatin and chitosan molecules in the membranes synthesized. The peak intensity ratio of chitosan membrane was reduced when gelatin was added. A little decrease in the crystallinity of chitosan/gelatin membranes was attributed to formation of hydrogen bonds. After addition of CNC’s, CNCT’s, CNF’s and CNFT’s in Alg/Ch gels at 50 wt% is observed a more perfect ordering, characteristic peaks of these nanostructures and diffractogram patterns more representative of high crystallinity. These results corroborate with a more uniform and organized microstructure and probably formation of hydrogen bonds and ionic interactions between un- and oxidized nanostructures and Alg/Ch -based gels. The thermal stability of Alg , Ch and Alg/Ch /nanocellulose semi-IPN’s were analyzed from TGA-DTG curves. The Figures in SI 3 present the curves of TGA obtained in nitrogen atmosphere and their first derivative (DTG). It was observed three main events of weight loss. The first one takes place between 20 and 175ºC and approximately 15% of weight loss attributed to water elimination and small fragments of glycoside structures. The second one in the range of 175 to 385ºC and ca . 40% weight loss can be considered the main event. It is attributed to degradation reactions of glycoside structure of Alg and Ch polyelectrolytes and nanocelluloses. The third one at approximately 385ºC is attributed to degradation of the crystalline regions of these components whose are more thermally stable. It is worth pointed out that in synthetic air or oxidant atmosphere the degradation of glycoside-based structures is generally displaced towards lower temperatures than nitrogen atmosphere. The residues (ash content) at approximately 600ºC are probably due to calcium inorganic salts as also described by Han et al. (2010). The thermal degradation of glycoside-based structures was also studied by other authors. The presence of hemicelluloses in the structure of NFC’s can displace the temperature of thermal degradations towards lowest values mainly in oxidant atmosphere (Yang et al., 2007). Isogai et al. (2011) describe the formation of sodium carboxylates in the structure of TEMPO oxidized nanocelluloses. These functional groups decrease the thermal stability of the nanocelluloses and displace the degradation temperature towards lowest values. In our work an increase of thermal stability and approximately 30 up to 40% of ash content at 600ºC were observed for Alg/Ch semi-IPN’s prepared by addition of TEMPO-oxidized nanocelluloses (CNCT’s or NFCT’s). This can be partially explained by the ionic crosslinking of the carboxylate groups/calcium ions. These ionic or electrostatic interactions can increase the thermal stability of gels and displace the degradation temperatures of the microstructure towards highest values. The two concentrations of nanocelluloses used in this work (36 and 50 wt%) show similar results when studied by FTIR-ATR, DRX and TGA-DTG. However, the better dimensional stability and mechanical properties were observed when 50 wt% of nanocelluloses were added to prepare gels. Based on these results were carried out on Alg/Ch /oxidized nanocellulose gels at 50 wt% analyses of DMTA, SEM and X-ray micro CT images and cell growth assays. Table 2 shows storage moduli obtained by dynamic mechanical thermal analyses (DMTA) of the gels. The samples were thermally post-treated in the furnace of the apparatus during a consecutive heating-cooling/heating-cooling cycle between 25 up to 80ºC. The results were compared at 35, 37 and 42ºC whose are temperatures for some biomedical applications. Tab. 2: Storage modulus (E’) obtained from DMTA curves during heating-cooling/heating-cooling cycles (25-80)ºC/(25-80)ºC (E’ 1 : storage modulus during first heating/cooling cycle (25-80)ºC; and E’ 2 : storage modulus during second heating/cooling cycle). Semi-IPN’s (50 wt% nanocellulose) 35ºC 37ºC 42ºC E’ 1 (MPa) E’ 2 (MPa) E’ 1 (MPa) E’ 2 (MPa) E’ 1 (MPa) E’ 2 (MPa) Alg/Ch 0.08 2.50 0.15 3.00 0.30 3.50 Alg/Ch /CNC 0.10 5.88 0.40 6.37 0.80 8.50 Alg/Ch /CNCT 0.10 6.50 0.11 8.10 0.11 10.1 Alg/Ch /NFC 0.10 7.05 0.10 7.20 0.10 8.00 Alg/Ch /NFCT 0.09 6.88 0.10 7.52 0.10 9.01 The biomaterials prepared by natural polymers or their derivatives and biopolymers generally present favorable microstructure for cell bioadhesion and proliferation. The poor mechanical properties and dimensional stability are generally drawbacks for their applications. The storage moduli (E’) show low values during first heating/cooling cycle as observed by DMTA analyses. This can be explained by the polyelectrolyte structures and fast ionic crosslinking in the calcium chloride bath. In these conditions polymer conformation and full ionic crosslinking can be limited before an ultimate state. When thermal post-treatment is carried out the polyelectrolyte structures are submitted to relaxations close to glass transitions values and the polymer chains can approach each other and to interact more effectively. Some additional degree of ionic crosslinking of calcium ions and carboxylate groups of Alg and CNCT’s and NFCT’s is expected. These behaviors (polymer relaxation and conformation and additional ionic crosslinking) can explain the remarkable increase of E’ after the first heating cycle up to 80ºC and during the second heating-cooling cycle (Siqueira and Botaro, 2013). The increase of mechanical properties of semi-IPN’s was also observed and described by authors when nanocelluloses are added in some polyelectrolytes (De France et al., 2017; Kumar et al. 2017). It can be observed in this work synergistic effects that increase the mechanical properties when oxidized nanocelluloses are added in the microstructure of gels and controlled thermal post-treatments are performed on the samples. It was decided to use CNCT’s and NFCT’s during porosity and cell growth studies after analyses of the influences of thermal post-treatment on the mechanical properties of Alg/Ch /nanocellulose semi-IPN’s. Even if all nanocellulose based-gels presented improved mechanical properties after thermal post-treatment the best results were observed when TEMPO oxidized nanocelluloses based-gels are submitted to thermal post-treatment for 4 h at 80ºC in an oven. Klemm et al. (2011), Lin and Dufresne (2014) and Chinga-Carrasco (2018) also described the great potential of biopolymer and nanocellulose applications to prepare biomaterials for regenerative medicine and would healing treatments. Figure 5 presents micrographs obtained by SEM analyses of Alg/Ch /nanocellulose semi-IPN’s. The pore sizes, their distribution and interconnectivity are very important for effective flow of nutrients and biological fluids. Figure 5.a shows the micrograph of Alg/Ch semi-IPN’s. It can be observed porous structures and thin walls that are characteristic of alginate-based gels. The addition of nanocelluloses (Figures 5.b-e) enable formation of porous structures and pore sizes in the range of 40 up to 150 µm when compared to gels without addition of nanocelluloses that show pore sizes in the range of 20 up to 40 µm. Li et al. (2005) stated based on their studies that porous substrates in the range of 100 up to 300 µm are beneficial for cell growth and potential biomedical applications. The gels prepared by addition of nanocelluloses (CNC, CNCT, NFC and NFCT) presented bigger pore sizes and rough walls than gels without them. These features can be partially explained by the impressive properties of nanocelluloses (high surface area, reactivity, stiffness and mechanical properties) (Siqueira et al., 2019; Lin and Duffresne, 2014). The synergistic effects of the addition of nanocelluloses, mainly TEMPO-oxidized, calcium crosslinking and thermal post-treatment improve the mechanical properties and increases the surface available for cell attachment. Fig. 5. Micrographs obtained by SEM of semi-IPN’s at 50 wt% nanocellulose concentration: (A) Alg/Ch semi-IPN’s, (B) Alg/Ch /CNC, (C) Alg/Ch /CNCT, (D) Alg/Ch/ NFC, (E) Alg/Ch /NFCT (magnification of 500x; the insets represent a magnification of 1000x). Figure 6 shows images obtained by X-ray micro CT of Alg/Ch /nanocellulose semi-IPN’s. This powerful technique enables to take qualitative and quantitative information of volume, size, shape, distribution and interconnectivity of pores (Isaac et al., 2015). The results corroborate with SEM images as a complementary tool to take some additional information about the internal microstructures of the gels. In this work the results of X-ray micro CT will be used for comparative purposes. The Figure 6.A shows an oriented structure of pores for Alg/Ch /CNCT semi-IPN’s and cracks probably due to the stiffness of CNCT’s (rigid rod-like structures) added in the gels. The Figure 6.B presents Alg/Ch /NFCT semi-IPN’s. It can be observed higher pore sizes, more uniform distribution and ribbed and roughness surfaces for these gels than CNCT-based gels. It was used the software Image J to take some quantitative information when compared Alg/Ch/ nanocellulose IPN’s for comparative purposes and based on the work of Isaac et al. (2015). The CNCT’s and NFCT’s-based gels present 50 and 80% of pores in their microstructures, respectively. Both oxidized nanocelluloses-based gels showed thickness of pore walls of 16 up to 20 µm but NFCT’s-based gels presented the highest homogeneity. Fig. 6: X-ray micro CT images of gels prepared at 50 wt% concentration: (a) Alg/Ch /CNCT semi-IPN’s, (b) Alg/Ch /NFCT semi-IPN’s, and (C) thickness of pore walls of Alg/Ch/nanocellulose semi-IPN’s. It is important for biomedical applications a combined effect of mechanical and biological properties to enable, for example, direct contact or replacement of some tissues of human body. It were carried out cytotoxicity and cell growth assays to analyze the properties of the materials synthesized in this work and their potential biomedical applications. At this time will be show some of the results obtained for cell growth. Figure 7 shows cell growth assays of L929 fibroblast cells. This kind of cells were cultured on substrates and the best results were observed on Alg/Ch/ nanocellulose gels (CNCT’s and NFCT’s at 50 wt%) (Figure 7.C-F) when compared to gels prepared without addition of nanocelluloses (Figure 7.A and B). It can be observed cell attachment, proliferation and differentiation of L929 fibroblast cells mainly on Alg/Ch /NFCT IPN’s (Figure 7.E and F). The cell growth was observed during all the time of the studies performed in this work (up to 30 days). The L929 fibroblast cells are attached in the gel microstructure as observed in the micrographs. The rough surface of the gels, the polyelectrolyte charges, the nanocellulose and the pore surface are essential parameters for attachment. The morphology of cells is kept approximately spherical or extended which are some evidences of proliferation, differenciation and/or biocompatibility on the substrate (Dan et al., 2016; Domingues et al., 2014). It was clearly possible to observe cell attachment of L929 fibroblast cells on Alg/Ch /NFCT IPN’s mainly due to surface area of the NFCT’s and functional groups as carboxylate and amino (Figure 7.E and F). These groups influence the cell adhesion, proliferation and differentiation due to physicochemical interactions of proteins of L929 fibroblast cells (Rashad et al., 2017). It can be also observed surprisingly the formation of thin and long filaments derived from fibroblast cells that improve the attachment (SI 4 ). These filaments show high degree of adherence and biocompatibility of the cells on these gels. Figure 7. Micrographs obtained by SEM of semi-IPN’s: (A) and (B) Alg/Ch , (C) and (D) Alg/Ch /CNCT (at 50 wt%), and (E) and (F) Alg/Ch /NFCT (at 50 wt%). Conclusions The Alg/Ch /nanocellulose semi-IPN’s present good dimensional stability and rough surface area, and enable cell attachment, growth, proliferation and differentiation for time interval as long as 30 days. The physicochemical parameters (pH, ionic strength, charge density, order of mixture, oxidation reaction and nanocellulose concentration), ionic crosslinking and thermal post-treatment influences directly the microstructure of the gels as observed by SEM and X-ray micro CT images. The roughness of the surface and complex structure of pores of these gels when nanocelluloses are added collaborate to cell attachment and growth. Declarations ACKNOWLEDGEMENT REDEMAT-UFOP, UFSCar, FAPESP (Processo:16/19896-2 Linha de fomento: Auxílio à Pesquisa - Regular), CNPq and "This study was financed in part by the Coordenação de Aperfeiçoamento de Pessoal de Nível Superior - Brasil (CAPES) - Finance Code 001" Funding : REDEMAT-UFOP. UFSCar, FAPESP, CNPq and CAPES Conflicts of interest/Competing interests : Not applicable Availability of data and material : Not applicable Code availability : Not applicable Authors' contributions : Priscila Siqueira b : experimental and analyses Ana de Lima a : experimental and analyses Felipe Medeiros a : experimental and thermal and mecanical analyses Augusta Isaac c : scientific discussions and images analyses Katia Novack b : co-supervisor of the project Vagner Botaro d : supervisor of the project Éder Siqueira a : writing, submission, expeirmental and analyses The first draft of the manuscript was written by Eder Siqueira and all authors commented on previous versions of the manuscript. All authors read and approved the final manuscript. Ethics approval The authors declare that they have no known competing financial interests or personal relationships that could have appeared to influence the work reported in this paper. 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Also discoverable on Platform About Our Team In Review Editorial Policies Advisory Board Help Center Resources Author Services Accessibility API Access RSS feed Manage Cookie Preferences © Research Square 2026 | ISSN 2693-5015 (online) Privacy Policy Terms of Service Do Not Sell My Personal Information {"props":{"pageProps":{"initialData":{"identity":"rs-706130","acceptedTermsAndConditions":true,"allowDirectSubmit":true,"archivedVersions":[],"articleType":"Research Article","associatedPublications":[],"authors":[{"id":56966135,"identity":"a5f056f1-37d1-473c-bcb3-fe1617545709","order_by":0,"name":"Priscila Siqueira","email":"","orcid":"","institution":"Universidade Federal de Ouro Preto Instituto de Ciencias Exatas e Biologicas","correspondingAuthor":false,"submittingAuthor":false,"prefix":"","firstName":"Priscila","middleName":"","lastName":"Siqueira","suffix":""},{"id":56966136,"identity":"5599e821-aa76-475b-83e4-179979e712ec","order_by":1,"name":"Ana de Lima","email":"","orcid":"","institution":"Universidade Federal de Minas Gerais","correspondingAuthor":false,"submittingAuthor":false,"prefix":"","firstName":"Ana","middleName":"","lastName":"de Lima","suffix":""},{"id":56966137,"identity":"2acc5569-ec56-4a93-8646-99f56e71f7c8","order_by":2,"name":"Felipe Medeiros","email":"","orcid":"","institution":"Universidade Federal de Minas Gerais","correspondingAuthor":false,"submittingAuthor":false,"prefix":"","firstName":"Felipe","middleName":"","lastName":"Medeiros","suffix":""},{"id":56966138,"identity":"a93e631f-5994-4dbd-8641-a5515b7ecadb","order_by":3,"name":"Augusta Isaac","email":"","orcid":"","institution":"Universidade Federal de Minas Gerais","correspondingAuthor":false,"submittingAuthor":false,"prefix":"","firstName":"Augusta","middleName":"","lastName":"Isaac","suffix":""},{"id":56966139,"identity":"8bc4cfff-c885-4b7a-bb32-32fd089fc575","order_by":4,"name":"Katia Novack","email":"","orcid":"","institution":"Universidade Federal de Ouro Preto Instituto de Ciencias Exatas e Biologicas","correspondingAuthor":false,"submittingAuthor":false,"prefix":"","firstName":"Katia","middleName":"","lastName":"Novack","suffix":""},{"id":56966140,"identity":"f7602a8e-e58b-4da7-9789-cea99b0dae88","order_by":5,"name":"Vagner Botaro","email":"","orcid":"","institution":"UFSCar: Universidade Federal de Sao Carlos","correspondingAuthor":false,"submittingAuthor":false,"prefix":"","firstName":"Vagner","middleName":"","lastName":"Botaro","suffix":""},{"id":56966141,"identity":"0f85c38d-0353-4f8e-aaab-787b60306b15","order_by":6,"name":"Eder Siqueira","email":"data:image/png;base64,iVBORw0KGgoAAAANSUhEUgAAAZAAAAAyAQMAAABI0h/eAAAABlBMVEX///8AAABVwtN+AAAACXBIWXMAAA7EAAAOxAGVKw4bAAAA+0lEQVRIiWNgGAWjYFCCBBAhAcSMDQwMFUCambmBFC1nQFoYidICBYxtDFC9eAA/e/KxDwx/LGQ3HG9u+/Bz3uFo/naglh8V23Bqkex5ljyDsU3CeMOZg80ze7cdzp1xmLGBsefMbZxaDG7kGANdIpG44UZiMwMvUEsDUAszYxtuLfY38j8zMPwBarn/sJnx75zDufMJaTGQyGFmYGAD2cLYzMzbcDh3AyEtEmeeAR0G9MvMM4nNzDLH0nM3ArUcxOcX/vbkx0CH1cn2HT/+mPFNjXXuvPOHDz74UYFbCwgw/0HERTOYPIBXPRTAtNQRo3gUjIJRMApGGAAAR3pdUY2ozqsAAAAASUVORK5CYII=","orcid":"https://orcid.org/0000-0003-3147-7103","institution":"Universidade Federal de Minas Gerais Instituto de Ciencias Exatas","correspondingAuthor":true,"submittingAuthor":false,"prefix":"","firstName":"Eder","middleName":"","lastName":"Siqueira","suffix":""}],"badges":[],"createdAt":"2021-07-11 01:04:51","currentVersionCode":1,"declarations":"","doi":"10.21203/rs.3.rs-706130/v1","doiUrl":"https://doi.org/10.21203/rs.3.rs-706130/v1","draftVersion":[],"editorialEvents":[],"editorialNote":"","failedWorkflow":false,"files":[{"id":14626666,"identity":"315b7836-6cd9-4001-85b0-fc9ffa005c36","added_by":"auto","created_at":"2021-10-18 15:18:20","extension":"jpg","order_by":1,"title":"Figure 1","display":"","copyAsset":false,"role":"figure","size":99447,"visible":true,"origin":"","legend":"Physicochemical interactions of Alg, Ch and nanocelluloses in the microstructure of the gels: (A) ionic crosslinking of Alg and calcium ions; (B) ionic crosslinking of Alg, TEMPO-oxidized nanocelluloses and calcium ions; (C) secondary interactions of the functional groups of Alg, Ch and nanocelluloses; (D) ionic interactions of Alg and Ch groups; and (E) ionic interactions of negatively charged groups of CNCT’s and NFCT’s and positively charged groups of Ch chains. ","description":"","filename":"1.jpg","url":"https://assets-eu.researchsquare.com/files/rs-706130/v1/cb821a435c31697d022fb31c.jpg"},{"id":14626664,"identity":"73e42b50-d679-4038-8f90-908d8879e8ed","added_by":"auto","created_at":"2021-10-18 15:18:20","extension":"jpg","order_by":2,"title":"Figure 2","display":"","copyAsset":false,"role":"figure","size":71663,"visible":true,"origin":"","legend":"Images of gels after freeze drying: (A) and (B) Alg/Ch/NFCT (at 50 wt%); and (C) and (D) Alg/Ch/CNCT (at 50 wt%). ","description":"","filename":"2.jpg","url":"https://assets-eu.researchsquare.com/files/rs-706130/v1/8d2e292126ec96a5989e8bc1.jpg"},{"id":14626980,"identity":"b8f59278-ba5d-4bd9-8ef4-b586365cbd20","added_by":"auto","created_at":"2021-10-18 15:21:20","extension":"jpg","order_by":3,"title":"Figure 3","display":"","copyAsset":false,"role":"figure","size":104752,"visible":true,"origin":"","legend":"(A) FTIR spectra at ATR mode of Alg and Ch polyelectrolytes and (B) crosslinked Alg/Ch/nanocellulose semi-IPN’s. ","description":"","filename":"3.jpg","url":"https://assets-eu.researchsquare.com/files/rs-706130/v1/a3eb25ad77ce5fe965d87140.jpg"},{"id":14626670,"identity":"ec6ee085-4adf-43fe-8fa5-56000cfb4e79","added_by":"auto","created_at":"2021-10-18 15:18:21","extension":"jpg","order_by":4,"title":"Figure 4","display":"","copyAsset":false,"role":"figure","size":83316,"visible":true,"origin":"","legend":"X-ray diffractograms: (A) alginate and chitosan; and (B) crosslinked Alg/Ch/nanocellulose semi-IPN gels. ","description":"","filename":"4.jpg","url":"https://assets-eu.researchsquare.com/files/rs-706130/v1/ba5c4d89aa5c202a017005e6.jpg"},{"id":14626669,"identity":"6298fd50-50ca-4b75-afeb-062da8f3b52b","added_by":"auto","created_at":"2021-10-18 15:18:21","extension":"jpg","order_by":5,"title":"Figure 5","display":"","copyAsset":false,"role":"figure","size":123744,"visible":true,"origin":"","legend":"Micrographs obtained by SEM of semi-IPN’s at 50 wt% nanocellulose concentration: (A) Alg/Ch semi-IPN’s, (B) Alg/Ch/CNC, (C) Alg/Ch/CNCT, (D) Alg/Ch/NFC, (E) Alg/Ch/NFCT (magnification of 500x; the insets represent a magnification of 1000x).","description":"","filename":"5.jpg","url":"https://assets-eu.researchsquare.com/files/rs-706130/v1/a7e8f9c6061423306c489aa7.jpg"},{"id":14627130,"identity":"29b2f9c4-7bd7-4b5e-bf3f-19c764cef91e","added_by":"auto","created_at":"2021-10-18 15:24:21","extension":"jpg","order_by":6,"title":"Figure 6","display":"","copyAsset":false,"role":"figure","size":155768,"visible":true,"origin":"","legend":"X-ray micro CT images of gels prepared at 50 wt% concentration: (a) Alg/Ch/CNCT semi-IPN’s, (b) Alg/Ch/NFCT semi-IPN’s, and (C) thickness of pore walls of Alg/Ch/nanocellulose semi-IPN’s.","description":"","filename":"6.jpg","url":"https://assets-eu.researchsquare.com/files/rs-706130/v1/8d92d1ad297ef2d597a5909e.jpg"},{"id":14626668,"identity":"f44fede6-ade8-4c71-861c-4846b7c95943","added_by":"auto","created_at":"2021-10-18 15:18:20","extension":"jpg","order_by":7,"title":"Figure 7","display":"","copyAsset":false,"role":"figure","size":137238,"visible":true,"origin":"","legend":"Micrographs obtained by SEM of semi-IPN’s: (A) and (B) Alg/Ch, (C) and (D) Alg/Ch/CNCT (at 50 wt%), and (E) and (F) Alg/Ch/NFCT (at 50 wt%). ","description":"","filename":"7.jpg","url":"https://assets-eu.researchsquare.com/files/rs-706130/v1/4c948fc205382eb629e7651d.jpg"},{"id":15291483,"identity":"04c2f057-394a-42e4-839e-b3adc6999c0a","added_by":"auto","created_at":"2021-11-07 20:39:38","extension":"pdf","order_by":0,"title":"","display":"","copyAsset":false,"role":"manuscript-pdf","size":1045916,"visible":true,"origin":"","legend":"","description":"","filename":"manuscript.pdf","url":"https://assets-eu.researchsquare.com/files/rs-706130/v1/dde6c8a6-a781-4477-8eab-ebbf7cd871b0.pdf"},{"id":14626672,"identity":"456a6c34-816d-42c8-a561-7c5925644fdf","added_by":"auto","created_at":"2021-10-18 15:18:21","extension":"pptx","order_by":1,"title":"","display":"","copyAsset":false,"role":"supplement","size":1166721,"visible":true,"origin":"","legend":"","description":"","filename":"GraphicalAbstractreviewed.pptx","url":"https://assets-eu.researchsquare.com/files/rs-706130/v1/44d96a48ceeac446f2c982b1.pptx"},{"id":14626671,"identity":"ae3729c7-8d26-4ecf-ab2f-b092537eeb86","added_by":"auto","created_at":"2021-10-18 15:18:21","extension":"docx","order_by":2,"title":"","display":"","copyAsset":false,"role":"supplement","size":1797011,"visible":true,"origin":"","legend":"","description":"","filename":"SI.docx","url":"https://assets-eu.researchsquare.com/files/rs-706130/v1/9f52ddd47172f54edeae0366.docx"}],"financialInterests":"","formattedTitle":"\u003cp\u003eThree-dimensional Hydrogels of Alginate/chitosan Semi-interpenetrating Polymer Networks and Nanocelluloses \u003c/p\u003e","fulltext":[{"header":"Highlights","content":"\u003cp\u003eAdvanced applications of hydrogels in biomedical fields\u003c/p\u003e\n\u003cp\u003eNanomaterials for biomedical applications\u003c/p\u003e\n\u003cp\u003eBio-based polymers and their biocompatibility in human body\u003c/p\u003e\n\u003cp\u003eGreen chemistry and unexpensive and exotic materials in emerging countries\u003c/p\u003e\n\u003cp\u003eOptimization of laboratory trials for industrial scale-up\u003c/p\u003e"},{"header":"Introduction","content":"\u003cp\u003eSynergistic effects arise when polymers are blended to prepare interpenetrating or semi-interpenetrating polymer networks also known as IPN\u0026rsquo;s or semi-IPN\u0026rsquo;s, respectively. These polymer networks enable preparation of materials and controlled and advanced properties (Naseri et al., 2016). The chitosan (\u003cem\u003eCh\u003c/em\u003e) is a polyelectrolyte obtained by physicochemical modification reaction of chitin and generally used to prepare biocompatible substrates (Li et al., 2005; Zhou, 2011). The alginate (\u003cem\u003eAlg\u003c/em\u003e) is an anionic polyelectrolyte naturally biosynthesized by brown algaes. The \u003cem\u003eCh\u003c/em\u003e and \u003cem\u003eAlg\u003c/em\u003e are some main polyelectrolytes used to prepare biocompatible materials.\u0026nbsp;\u003c/p\u003e\n\u003cp\u003eThe polyelectrolyte complexes (PEC\u0026rsquo;s) or polyelectrolyte macroion complexes (PMC\u0026rsquo;s) are prepared by the mixture of oppositely charged polymers. They can be used to prepare multifunctional hydrogels and to obtain tunable physicochemical properties (Gabrovska et al., 2008). \u0026nbsp;The microstructure of the hydrogels are kept mainly by electrostatic interactions. However, these kind of interactions are highly dependent of pH and ionic strength of the reaction medium (Berger et al., 2004).\u0026nbsp;\u003c/p\u003e\n\u003cp\u003eThe \u003cem\u003eCh\u003c/em\u003e is a well known polymer due to its properties as biodegradability, biocompatibility and antimicrobiological activity (Lohani et al., 2014; Rinaudo, 2008). This polyelectrolyte is used in biomedical fields due to its ability to accelerate wound healing (Czaja et al., 2007). The \u003cem\u003eCh\u003c/em\u003e-based hydrogels can be prepared by crosslinking between tripolyphosphate and vinyl alcohol and functional groups of \u003cem\u003eCh\u003c/em\u003e chains (Berger et al., 2004). The microstructure of physically crosslinked \u003cem\u003eCh\u003c/em\u003e-based hydrogels are kept by electrostatic interactions between the negative charges of the crosslinking agents and positive charges of amine functional groups of \u003cem\u003eCh\u003c/em\u003e structure. However, the mechanical properties and dimensional stability of physically crosslinked hydrogels are limited by the charge density of the crosslinking agent and polyelectrolytes, the ionic strength and pH of the medium (Azzam et al., 2016).\u0026nbsp;\u003c/p\u003e\n\u003cp\u003eThe covalently crosslinked hydrogels present strong bonds and three-dimensional networks (Senna et al., 2014; Senna and Botaro, 2017). The microstructure of these hydrogels allows effective diffusion of fluids and a minimum decrease of their mechanical properties and dimensional stability. These hydrogels show applications in biomedical fields, as for example, drug delivery systems and to prepare scaffolds. One drawback to use covalent crosslinking agent to prepare hydrogels is its degree of biocompatibility. Glutaraldehyde and glyoxal are good candidates as covalent crosslinking agents of \u003cem\u003eCh\u003c/em\u003e but they present neurotoxic (Betancor et al., 2006) and mutagenic effects (Murata-Kamiya et al., 1997). The genipin is an interesting natural and crosslinking agent to replace dialdehydes to prepare covalently crosslinked hydrogels (Mi et al., 2002). This chemical is\u003cstrong\u003e\u0026nbsp;\u003c/strong\u003ean\u0026nbsp;\u003ca href=\"https://en.wikipedia.org/wiki/Aglycone\" title=\"Aglycone\"\u003eaglycone\u003c/a\u003e derived from\u0026nbsp;\u003ca href=\"https://en.wikipedia.org/wiki/Iridoid\" title=\"Iridoid\"\u003eiridoid\u003c/a\u003e \u003ca href=\"https://en.wikipedia.org/wiki/Glycoside\" title=\"Glycoside\"\u003eglycoside\u003c/a\u003e also called\u0026nbsp;\u003ca href=\"https://en.wikipedia.org/wiki/Geniposide\" title=\"Geniposide\"\u003egeniposide\u003c/a\u003e and\u0026nbsp;presents good cytocompatibility. However, the use of genipin in large scale is limited by its high price and limited availability in the nature.\u0026nbsp;\u0026nbsp;\u003c/p\u003e\n\u003cp\u003eSome studies show effectiveness to improve the properties of \u003cem\u003eCh\u003c/em\u003e-based hydrogels through the formation of semi-IPN\u0026rsquo;s or IPN\u0026rsquo;s. These materials can be obtained by mixture of \u003cem\u003eCh\u003c/em\u003e and \u003cem\u003eAlg\u003c/em\u003e at controlled conditions. The semi-IPN gels have taken considerable attention of the scientific community due to their improved properties obtained by synergistic effects (Berger et al., 2004; and Lohani et al., 2014). The \u003cem\u003eCh\u003c/em\u003e-based semi-IPN gels have also been described more effective during cell culture assays than gels prepared only from\u003cem\u003e\u0026nbsp;Ch\u0026nbsp;\u003c/em\u003e(Berger et al., 2004).\u003c/p\u003e\n\u003cp\u003eRani et al. (2011) describe the controlled drug release of chitosan/glycine/glutamic acid IPN gels crosslinked by glutaraldehyde. Their results were promising for biomedical applications. It was observed that the degree of swelling and releasing of drugs are limited by the pH, the degree of crosslinking in the IPN structure and weight ratio (wt%) of the polymers. Reddy et al. (2009) synthesized chitosan/ghatti gum IPN\u0026rsquo;s by the emulsion technique and glutaraldehyde as crosslinking agent. The microparticles were used for controlled release of sodium diclofenac. It was observed drug releasing up to 12 h in the intestine.\u0026nbsp;\u003c/p\u003e\n\u003cp\u003eLi et al. (2009) show the cytocompatibility and cell viability of chitosan/alginate scaffolds. The cell morphology, proliferation and bioadhesion on the material were studied \u003cem\u003ein vitro\u003c/em\u003e. The analyzes of proteins extracted during cell growth showed the production of a specific type of collagen. This behavior was not observed on the crosslinked \u003cem\u003eCh-\u003c/em\u003ebased\u003cem\u003e\u0026nbsp;\u003c/em\u003esubstrate itself. This study suggests that chitosan/alginate semi-IPN\u0026rsquo;s enable cell proliferation, increase the expression of the HTB-94 chondrocyte phenotype and can be used as an alternative to prepare scaffolds. However, any mechanical measurement was described.\u003c/p\u003e\n\u003cp\u003eRani et al. (2011) carried out the synthesis of chitosan/alginate semi-IPN\u0026rsquo;s to be used as scaffolds. Silver nanoparticles were added in the microstructure as antibacterial agent. It can be postulate based on their results the potential use of this kind of material in biomedical areas and the needs of complementary studies as mechanical and thermal properties, and porous microstructures of chitosan/alginate hydrogels.\u0026nbsp;\u003c/p\u003e\n\u003cp\u003eThe first part of our research project was published in a recent paper (Siqueira et al., 2019) in which was studied alginate/nanocelluloses hydrogels. This article can be considered primary studies towards optimization of thermal and mechanical properties, experimental procedures and biological features. The alginate/nanocellulose hydrogels were submitted to cytotoxicity and biocompatibility assays. However, the use of sodium alginate presents some limitations as price, synthesis, availability and mechanical properties. Based on these assumptions additional studies to improve or to impart new properties into these materials are needed.\u0026nbsp;\u003c/p\u003e\n\u003cp\u003eIn this study it was decided to add chitosan (cationic polyelectrolyte) and alginate (anionic polyeletrolyte) to prepare semi-interpenetrating polymer networks (semi-IPN\u0026rsquo;s) and nanocelluloses to optimize the material, to impart new properties and to increase some others not presented when only alginate and nanocelluloses were used to prepare biomaterials. Some advantages of the blend between these polyelectrolytes are related to economical concerns (actually the price of alginate is 1.5 higher than chitosan), mechanical properties and biocompatibility effects (\u003cem\u003eCh\u003c/em\u003e is a polyelectrolyte derived from chitin which present impressive properties and interesting biocompatibility).\u0026nbsp;\u003c/p\u003e\n\u003cp\u003eThe material prepared by alginate/chitosan presents classical and rich theoretical and experimental information about physicochemistry domains and the drawbacks related to its preparation. This article putt other readers at close contact with very important theories (physycochemistry of solution, suspension, and polyelectrolytes; colloidal sciences; and surface and interface physicochemical interactions, etc.) to prepare advanced materials, and the experimental limitations related by the structures of these chemicals at molecular level.\u0026nbsp;\u003c/p\u003e\n\u003cp\u003eCNC\u0026rsquo;s and NFC\u0026rsquo;s were added in the gels at different mixture order, pH, ionic strength and concentration in this work. Un- and modified nanocelluloses (TEMPO oxidized) were used to increase or to impart new properties. It is expected that the careful empirical studies and characterization techniques evidence the benefits and synergistic effects between the components of the semi-IPN\u0026rsquo;s. \u0026nbsp;\u003c/p\u003e\n\u003cp\u003eThe addition of nanocelluloses in \u003cem\u003eAlg/Ch\u003c/em\u003e semi-IPN\u0026rsquo;s, mainly oxidized cellulose nanocrystals and nanofibrils (CNCT\u0026rsquo;s and NFCT\u0026rsquo;s, respectively) presented the very promising results. These features are very important for structural applications, transport of biological fluids and nutrients; and cell attachment, growth, differentiation and proliferation. To the best of our knowledge any study was still published describing all these parameters (biocompatibility, addition of un- and modified nanocelluloses, mechanical and thermal properties, dimensional stability, porous structures and physicochemical interactions).\u0026nbsp;These materials also present remarkable ecological and economical concerns and advances towards sustainability and green chemistry.\u0026nbsp;\u003c/p\u003e\n\u003cp\u003eThe \u003cem\u003eCh\u003c/em\u003e is a polyelectrolyte slightly soluble in water and potential candidate for application in biomedical engineering. Its structure is formed by \u0026beta;-(1-4)-2-amino-2-deoxy-D-glucose units. The polymer chains of \u003cem\u003eCh\u0026nbsp;\u003c/em\u003eare similar to cellulose and in acidified medium \u003cem\u003eCh\u003c/em\u003e is a polycation due to protonation of amine groups. The \u003cem\u003eAlg\u003c/em\u003e is an anionic polyelectrolyte and its linear chain is soluble in aqueous media. The \u003cem\u003eAlg\u003c/em\u003e is well known due to their healing and anti-tumoral properties. It consists of \u0026beta;-D-manuronic acid (M) and \u0026alpha;-L-guluronic acid (G) units linked by glycosidic bonds. \u003cem\u003eAlg\u003c/em\u003e is considered a polyanion at neutral or alkaline medium due to carboxyl groups in its structure. \u0026nbsp;\u003c/p\u003e\n\u003cp\u003eThe physicochemical interactions between \u003cem\u003eAlg\u003c/em\u003e and \u003cem\u003eCh\u003c/em\u003e mainly through electrostatic interactions is a challenge. This blend can be an interesting candidate to prepare stable hydrogels and to impart improved structural homogeneity, dimensional stability and mechanical and biological properties when compared to other prepared from \u003cem\u003eAlg\u003c/em\u003e or \u003cem\u003eCh\u003c/em\u003e themselves or by polymers derived from sources as petroleum (Li et al., 2005).\u0026nbsp;\u003c/p\u003e"},{"header":"Materials And Methods","content":"\u003cp\u003e\u003cstrong\u003eMaterials\u003c/strong\u003e\u003c/p\u003e\n\u003cp\u003eThe bleached \u003cem\u003eEucalyptus\u003c/em\u003e pulp used in this work was supplied by Suzano Papel e Celulose (Brazil). Sodium hypochlorite (NaClO), 2,2,6,6-tetramethylpiperidin-1-oxyl solution (TEMPO radical at 98%), sodium bromide (NaBr), hydrochloric acid (HCl at 37%), sulfuric acid (H\u003csub\u003e2\u003c/sub\u003eSO\u003csub\u003e4\u003c/sub\u003e at 98%) and sodium hydroxide (NaOH) were used. All these chemicals were supplied by Sigma Aldrich.\u0026nbsp;\u003c/p\u003e\n\u003cp\u003eThe hydrogels were prepared with \u003cem\u003eAlg\u0026nbsp;\u003c/em\u003eof high molecular weight supplied by Sigma-Aldrich (M\u003csub\u003ew\u003c/sub\u003e = 1 x 10\u003csup\u003e6\u003c/sup\u003e g.mol\u003csup\u003e-1\u003c/sup\u003e, M/G ratio = 1.56 and viscosity of 250 cP at 25\u0026deg;C and 2 wt%). The \u003cem\u003eCh\u003c/em\u003e was supplied by Phytomare (M\u003csub\u003ew\u003c/sub\u003e \u0026lt; 100 kDa and average degree of deacetylation of 90%).\u0026nbsp;Glacial acetic acid (C\u003csub\u003e2\u003c/sub\u003eH\u003csub\u003e4\u003c/sub\u003eO\u003csub\u003e2\u003c/sub\u003e at 99.8%) and calcium chloride (CaCl\u003csub\u003e2\u003c/sub\u003e.2H\u003csub\u003e2\u003c/sub\u003eO) were purchased of Vetec Qu\u0026iacute;mica Fina Ltda (Brazil).\u0026nbsp;\u003c/p\u003e\n\u003cp\u003eThe phosphate buffer solution (PBS) was prepared by mixture of sodium chloride (NaCl), potassium chloride (KCl) and potassium phosphate (K\u003csub\u003e3\u003c/sub\u003ePO\u003csub\u003e4\u003c/sub\u003e). All these chemicals were supplied by Synth. The sodium phosphate monohydrate (Na\u003csub\u003e3\u003c/sub\u003ePO\u003csub\u003e4\u003c/sub\u003e.H\u003csub\u003e2\u003c/sub\u003eO) supplied by Vetec Qu\u0026iacute;mica Fina Ltda and orthophosphoric acid (H\u003csub\u003e3\u003c/sub\u003ePO\u003csub\u003e4\u003c/sub\u003e at 85%) supplied by Neon.\u0026nbsp;All these chemicals were supplied at pure degree and used as received.\u003c/p\u003e\n\u003cp\u003e\u003cstrong\u003eMethods\u003c/strong\u003e\u003c/p\u003e\n\u003cp\u003e\u003cstrong\u003eExtraction, oxidation reaction and characterization of nanocelluloses\u003c/strong\u003e\u003c/p\u003e\n\u003cp\u003eThe cellulose nanofibrils (NFC\u0026rsquo;s) and nanocrystals (CNC\u0026rsquo;s) were extracted and isolated, respectively, from bleached kraft cellulose pulp.\u0026nbsp;\u003c/p\u003e\n\u003cp\u003eThe NFC\u0026rsquo;s were obtained from mechanical shearing. The bleached cellulose fibers were suspended in water at 2 wt% and grounded in a Supermass Colloider mill (MKZA10-20J CE Masuko Sangyo, Japan).\u0026nbsp;\u003c/p\u003e\n\u003cp\u003eThe CNC\u0026rsquo;s were also obtained from bleached kraft pulp in the Laboratory of Physicochemistry of UFMG (Brazil). The hydrolysis reaction was carried out in sulfuric acid solution at 65% (v/v), 50\u003csup\u003eo\u003c/sup\u003eC and constant mechanical stirring for 50 min. Three dilutions were performed with milli-Q water to stop the reaction. The suspension was submitted to centrifugation steps to remove the excess of acid. The supernatant was eliminated and the precipitate solubilized, and added in dialysis membranes. Changes of water of dialysis bath were carried out up to neutral pH. The suspension of CNC\u0026rsquo;s was submitted to ultrasound treatment for 2 min (Unique Sonicator, 40 kHz) and filtered through membranes of acetate cellulose (Sartorius).\u0026nbsp;\u003c/p\u003e\n\u003cp\u003eThe NFC\u0026rsquo;s and CNC\u0026rsquo;s were oxidized by TEMPO catalyzed reaction. The oxidation of hydroxyl groups in nanocelluloses was performed based on the method described by Saito and Isogai (2004).\u0026nbsp;\u003c/p\u003e\n\u003cp\u003eCellulose pulp at 1.5 wt% was used to prepare TEMPO-oxidized cellulose nanofibers (NFCT\u0026rsquo;s). It was added 0.016 g of TEMPO radical in the aqueous reaction medium, 0.100 g of NaBr and 5.35 mL of NaClO at 14 wt%. The pH of the medium was kept at 10 by addition of sodium hydroxide solution. The NFCT\u0026rsquo;s were washed by distilled water and centrifugation steps up to neutral pH. At the end suspensions at 2 wt% of NFCT\u0026rsquo;s were obtained.\u0026nbsp;\u003c/p\u003e\n\u003cp\u003eSuspension of TEMPO-oxidized cellulose nanocrystals (CNCT\u0026rsquo;s) was prepared based on the experimental procedures described by Saito et al. (2007). The 0.100 mmol TEMPO radical and 1.00 mmol NaBr were solubilized in water per gram of cellulose. The suspension of CNC\u0026rsquo;s at 2 wt% were added into a three bottom neck flask. The pH of the suspension was kept at 10 by the addition of sodium hydroxide solution. The oxidation reaction was started by addition of sodium hypochlorite (NaClO). The CNCT\u0026rsquo;s were washed by centrifugation steps and putted in dialysis membranes (6-8 kDa) up to neutral pH.\u0026nbsp;\u003c/p\u003e\n\u003cp\u003eConductometric titrations were performed as described by Saito and Isogai (2004) to determine the degree of oxidation (DO) of the nanocelluloses. Approximately 50.0 mg of TEMPO oxydized nanocelluloses were suspended in 0.0500 mol.L\u003csup\u003e-1\u003c/sup\u003e hydrochloric acid solution and the pH adjusted up to 2.7 to protonate acid groups present on the nanocelluloses. The titration was carried out by dropwise of 0.0100 mol.L\u003csup\u003e-1\u003c/sup\u003e sodium hydroxide solution.\u0026nbsp;\u003c/p\u003e\n\u003cp\u003e\u003cstrong\u003e\u003cem\u003eAlg\u003c/em\u003e\u003c/strong\u003e\u003cstrong\u003e/\u003cem\u003eCh\u003c/em\u003e semi-IPN\u0026rsquo;s\u003c/strong\u003e\u003c/p\u003e\n\u003cp\u003eTo prepare \u003cem\u003eAlg/Ch\u003c/em\u003e semi-IPN\u0026rsquo;s a three-dimensional network is desirable between carboxylic groups in \u003cem\u003eAlg\u003c/em\u003e and amine groups in \u003cem\u003eCh\u003c/em\u003e structure. Some physicochemical interactions, as for example between divalent metal cations (M\u003csup\u003e2+\u003c/sup\u003e), as calcium ions, and negatively charged groups as carboxylate contribute to the formation of the microstructure. \u003cem\u003eAlg/Ch\u003c/em\u003e/nanocellulose gels were prepared in aqueous media. Both polyelectrolytes present ionic functional groups in their chains at specific experimental conditions. This is possible at the pH close to the pKa values of the functional groups (Azzam et al., 2016; Li et al., 2009; Siqueira et al., 2019; Saito et al., 2007; Saito and Isogai, 2004; Senel et al., 2000). The \u003cem\u003eAlg\u0026nbsp;\u003c/em\u003eshows pKa value in the range of 3.38 and 3.65 for sequences of M and G, respectively, and \u003cem\u003eCh\u0026nbsp;\u003c/em\u003epKa value close to 6.3. In this work the optimized pH to prepare PEC\u0026rsquo;s and semi-IPN\u0026rsquo;s is in the range between 3.4 and 6.3. It was decided to use an optimized pH of 5.3 after trials.\u0026nbsp;\u003c/p\u003e\n\u003cp\u003eThe \u003cem\u003eAlg-\u003c/em\u003e and \u003cem\u003eCh-\u003c/em\u003ebased gels were also crosslinked by calcium ions (Ca\u003csup\u003e2+\u003c/sup\u003e) to enable comparative data (blank samples). The \u003cem\u003eCh\u003c/em\u003e solution was prepared at pH 5.3 and 2.0 wt% and \u003cem\u003eAlg\u003c/em\u003e solution at pH 3.8 and 2.0 wt%. The \u003cem\u003eAlg\u003c/em\u003e and \u003cem\u003eCh\u003c/em\u003e solutions were slowly added under mild mechanical stirring (340 rpm) at 60\u003csup\u003eo\u003c/sup\u003eC for 60 min. The PEC\u0026rsquo;s were cooled in liquid nitrogen and freeze dried for 48 h. The gels were added in a bath of 2.0 wt% of calcium chloride solution for 15 min. At this time the interactions between negatively charged groups (carboxylate groups) and Ca\u003csup\u003e2+\u003c/sup\u003e can takes place and the microstructure of \u003cem\u003eAlg/Ch\u003c/em\u003e semi-IPN\u0026rsquo;s be formed. It is worth pointed out that trials to determine an optimized contact time of \u003cem\u003eAlg/Ch\u003c/em\u003e semi-IPN\u0026rsquo;s in calcium chloride\u003csub\u003e\u0026nbsp;\u003c/sub\u003esolution bath were previously performed (between 5 min and 24 h). The \u003cem\u003eAlg/Ch\u003c/em\u003e semi-IPN\u0026rsquo;s crosslinked by calcium ions were washed in distilled water to remove excess, cooled in liquid nitrogen and freeze dried for 48 h.\u003c/p\u003e\n\u003cp\u003eNanocellulose suspensions at 1.14 wt% were first dispersed in sodium \u003cem\u003eAlg\u003c/em\u003e solution (2.0 wt%) for synthesis of \u003cem\u003eAlg/Ch/nanocellulose\u0026nbsp;\u003c/em\u003esemi-IPN\u0026rsquo;s. The weight ratio between nanocelluloses, \u003cem\u003eAlg\u0026nbsp;\u003c/em\u003eand \u003cem\u003eCh\u003c/em\u003e in these studies are shown in Table 1. These mixtures were also kept under heating and stirring for 60 min, cooled and freeze dried for 48 h. The gels were added in 2.0 wt% calcium chloride bath for 15 min. The crosslinked materials were washed by distilled water to remove excess of calcium ions and freeze dried for 48 h.\u003c/p\u003e\n\u003cp\u003eTab. 1: Weight ratio of nanocelluloses (wt%) for synthesis of \u003cem\u003eAlg/Ch\u003c/em\u003e semi-IPN\u0026rsquo;s.\u0026nbsp;\u003c/p\u003e\n\u003ctable border=\"0\" cellpadding=\"0\" cellspacing=\"0\"\u003e\n \u003ctbody\u003e\n \u003ctr\u003e\n \u003ctd valign=\"top\" width=\"24.954128440366972%\"\u003e\n \u003cp\u003e\u003cem\u003eSample\u003c/em\u003e\u003c/p\u003e\n \u003c/td\u003e\n \u003ctd valign=\"top\" width=\"15.045871559633028%\"\u003e\n \u003cp\u003e\u003cem\u003eCh\u003c/em\u003e\u003c/p\u003e\n \u003cp\u003e\u003cem\u003e(g)\u003c/em\u003e\u003c/p\u003e\n \u003c/td\u003e\n \u003ctd colspan=\"2\" valign=\"top\" width=\"15.596330275229358%\"\u003e\n \u003cp\u003e\u003cem\u003eAlg\u003c/em\u003e\u003c/p\u003e\n \u003cp\u003e\u003cem\u003e(g)\u003c/em\u003e\u003c/p\u003e\n \u003c/td\u003e\n \u003ctd valign=\"top\" width=\"17.61467889908257%\"\u003e\n \u003cp\u003eNanocelluloses\u003cem\u003e\u0026nbsp;(g)\u003c/em\u003e\u003c/p\u003e\n \u003c/td\u003e\n \u003ctd colspan=\"2\" valign=\"top\" width=\"26.788990825688074%\"\u003e\n \u003cp\u003e\u003cem\u003eAlg/Ch/\u003c/em\u003enanocelluloses\u003c/p\u003e\n \u003c/td\u003e\n \u003c/tr\u003e\n \u003ctr\u003e\n \u003ctd valign=\"top\" width=\"24.954128440366972%\"\u003e\n \u003cp\u003e\u003cem\u003eAlg\u0026shy;/Ch\u0026nbsp;\u003c/em\u003e\u003c/p\u003e\n \u003c/td\u003e\n \u003ctd valign=\"top\" width=\"15.045871559633028%\"\u003e\n \u003cp\u003e0.20\u003c/p\u003e\n \u003c/td\u003e\n \u003ctd valign=\"top\" width=\"11.926605504587156%\"\u003e\n \u003cp\u003e0.20\u003c/p\u003e\n \u003c/td\u003e\n \u003ctd colspan=\"3\" valign=\"top\" width=\"26.605504587155963%\"\u003e\n \u003cp\u003e0.00\u003c/p\u003e\n \u003c/td\u003e\n \u003ctd valign=\"top\" width=\"21.46788990825688%\"\u003e\n \u003cp\u003e0.00\u003c/p\u003e\n \u003c/td\u003e\n \u003c/tr\u003e\n \u003ctr\u003e\n \u003ctd valign=\"top\" width=\"24.954128440366972%\"\u003e\n \u003cp\u003e\u003cem\u003eAlg\u0026shy;/Ch/\u003c/em\u003eCNC10\u003c/p\u003e\n \u003c/td\u003e\n \u003ctd valign=\"top\" width=\"15.045871559633028%\"\u003e\n \u003cp\u003e0.20\u003c/p\u003e\n \u003c/td\u003e\n \u003ctd valign=\"top\" width=\"11.926605504587156%\"\u003e\n \u003cp\u003e0.20\u003c/p\u003e\n \u003c/td\u003e\n \u003ctd colspan=\"3\" valign=\"top\" width=\"26.605504587155963%\"\u003e\n \u003cp\u003e0.04\u003c/p\u003e\n \u003c/td\u003e\n \u003ctd valign=\"top\" width=\"21.46788990825688%\"\u003e\n \u003cp\u003e0.10\u003c/p\u003e\n \u003c/td\u003e\n \u003c/tr\u003e\n \u003ctr\u003e\n \u003ctd valign=\"top\" width=\"24.954128440366972%\"\u003e\n \u003cp\u003e\u003cem\u003eAlg\u0026shy;/Ch/\u003c/em\u003eCNC36\u003c/p\u003e\n \u003c/td\u003e\n \u003ctd valign=\"top\" width=\"15.045871559633028%\"\u003e\n \u003cp\u003e0.20\u003c/p\u003e\n \u003c/td\u003e\n \u003ctd valign=\"top\" width=\"11.926605504587156%\"\u003e\n \u003cp\u003e0.20\u003c/p\u003e\n \u003c/td\u003e\n \u003ctd colspan=\"3\" valign=\"top\" width=\"26.605504587155963%\"\u003e\n \u003cp\u003e0.22\u003c/p\u003e\n \u003c/td\u003e\n \u003ctd valign=\"top\" width=\"21.46788990825688%\"\u003e\n \u003cp\u003e0.55\u003c/p\u003e\n \u003c/td\u003e\n \u003c/tr\u003e\n \u003ctr\u003e\n \u003ctd valign=\"top\" width=\"24.954128440366972%\"\u003e\n \u003cp\u003e\u003cem\u003eAlg\u0026shy;/Ch/\u003c/em\u003eCNC50\u003c/p\u003e\n \u003c/td\u003e\n \u003ctd valign=\"top\" width=\"15.045871559633028%\"\u003e\n \u003cp\u003e0.20\u003c/p\u003e\n \u003c/td\u003e\n \u003ctd valign=\"top\" width=\"11.926605504587156%\"\u003e\n \u003cp\u003e0.20\u003c/p\u003e\n \u003c/td\u003e\n \u003ctd colspan=\"3\" valign=\"top\" width=\"26.605504587155963%\"\u003e\n \u003cp\u003e0.40\u003c/p\u003e\n \u003c/td\u003e\n \u003ctd valign=\"top\" width=\"21.46788990825688%\"\u003e\n \u003cp\u003e1.00\u003c/p\u003e\n \u003c/td\u003e\n \u003c/tr\u003e\n \u003ctr\u003e\n \u003ctd valign=\"top\" width=\"24.954128440366972%\"\u003e\n \u003cp\u003e\u003cem\u003eAlg\u0026shy;/Ch/\u003c/em\u003eCNCT10\u003c/p\u003e\n \u003c/td\u003e\n \u003ctd valign=\"top\" width=\"15.045871559633028%\"\u003e\n \u003cp\u003e0.20\u003c/p\u003e\n \u003c/td\u003e\n \u003ctd valign=\"top\" width=\"11.926605504587156%\"\u003e\n \u003cp\u003e0.20\u003c/p\u003e\n \u003c/td\u003e\n \u003ctd colspan=\"3\" valign=\"top\" width=\"26.605504587155963%\"\u003e\n \u003cp\u003e0.04\u003c/p\u003e\n \u003c/td\u003e\n \u003ctd valign=\"top\" width=\"21.46788990825688%\"\u003e\n \u003cp\u003e0.10\u003c/p\u003e\n \u003c/td\u003e\n \u003c/tr\u003e\n \u003ctr\u003e\n \u003ctd valign=\"top\" width=\"24.954128440366972%\"\u003e\n \u003cp\u003e\u003cem\u003eAlg\u0026shy;/Ch/\u003c/em\u003eCNCT36\u003c/p\u003e\n \u003c/td\u003e\n \u003ctd valign=\"top\" width=\"15.045871559633028%\"\u003e\n \u003cp\u003e0.20\u003c/p\u003e\n \u003c/td\u003e\n \u003ctd valign=\"top\" width=\"11.926605504587156%\"\u003e\n \u003cp\u003e0.20\u003c/p\u003e\n \u003c/td\u003e\n \u003ctd colspan=\"3\" valign=\"top\" width=\"26.605504587155963%\"\u003e\n \u003cp\u003e0.22\u003c/p\u003e\n \u003c/td\u003e\n \u003ctd valign=\"top\" width=\"21.46788990825688%\"\u003e\n \u003cp\u003e0.55\u003c/p\u003e\n \u003c/td\u003e\n \u003c/tr\u003e\n \u003ctr\u003e\n \u003ctd valign=\"top\" width=\"24.954128440366972%\"\u003e\n \u003cp\u003e\u003cem\u003eAlg\u0026shy;/Ch/\u003c/em\u003eCNCT50\u003c/p\u003e\n \u003c/td\u003e\n \u003ctd valign=\"top\" width=\"15.045871559633028%\"\u003e\n \u003cp\u003e0.20\u003c/p\u003e\n \u003c/td\u003e\n \u003ctd valign=\"top\" width=\"11.926605504587156%\"\u003e\n \u003cp\u003e0.20\u003c/p\u003e\n \u003c/td\u003e\n \u003ctd colspan=\"3\" valign=\"top\" width=\"26.605504587155963%\"\u003e\n \u003cp\u003e0.40\u003c/p\u003e\n \u003c/td\u003e\n \u003ctd valign=\"top\" width=\"21.46788990825688%\"\u003e\n \u003cp\u003e1.00\u003c/p\u003e\n \u003c/td\u003e\n \u003c/tr\u003e\n \u003ctr\u003e\n \u003ctd valign=\"top\" width=\"24.954128440366972%\"\u003e\n \u003cp\u003e\u003cem\u003eAlg\u0026shy;/Ch/\u003c/em\u003eNFC10\u003c/p\u003e\n \u003c/td\u003e\n \u003ctd valign=\"top\" width=\"15.045871559633028%\"\u003e\n \u003cp\u003e0.20\u003c/p\u003e\n \u003c/td\u003e\n \u003ctd valign=\"top\" width=\"11.926605504587156%\"\u003e\n \u003cp\u003e0.20\u003c/p\u003e\n \u003c/td\u003e\n \u003ctd colspan=\"3\" valign=\"top\" width=\"26.605504587155963%\"\u003e\n \u003cp\u003e0.04\u003c/p\u003e\n \u003c/td\u003e\n \u003ctd valign=\"top\" width=\"21.46788990825688%\"\u003e\n \u003cp\u003e0.10\u003c/p\u003e\n \u003c/td\u003e\n \u003c/tr\u003e\n \u003ctr\u003e\n \u003ctd valign=\"top\" width=\"24.954128440366972%\"\u003e\n \u003cp\u003e\u003cem\u003eAlg\u0026shy;/Ch/\u003c/em\u003eNFC36\u003c/p\u003e\n \u003c/td\u003e\n \u003ctd valign=\"top\" width=\"15.045871559633028%\"\u003e\n \u003cp\u003e0.20\u003c/p\u003e\n \u003c/td\u003e\n \u003ctd valign=\"top\" width=\"11.926605504587156%\"\u003e\n \u003cp\u003e0.20\u003c/p\u003e\n \u003c/td\u003e\n \u003ctd colspan=\"3\" valign=\"top\" width=\"26.605504587155963%\"\u003e\n \u003cp\u003e0.22\u003c/p\u003e\n \u003c/td\u003e\n \u003ctd valign=\"top\" width=\"21.46788990825688%\"\u003e\n \u003cp\u003e0.55\u003c/p\u003e\n \u003c/td\u003e\n \u003c/tr\u003e\n \u003ctr\u003e\n \u003ctd valign=\"top\" width=\"24.954128440366972%\"\u003e\n \u003cp\u003e\u003cem\u003eAlg\u0026shy;/Ch/\u003c/em\u003eNFC50\u003c/p\u003e\n \u003c/td\u003e\n \u003ctd valign=\"top\" width=\"15.045871559633028%\"\u003e\n \u003cp\u003e0.20\u003c/p\u003e\n \u003c/td\u003e\n \u003ctd valign=\"top\" width=\"11.926605504587156%\"\u003e\n \u003cp\u003e0.20\u003c/p\u003e\n \u003c/td\u003e\n \u003ctd colspan=\"3\" valign=\"top\" width=\"26.605504587155963%\"\u003e\n \u003cp\u003e0.40\u003c/p\u003e\n \u003c/td\u003e\n \u003ctd valign=\"top\" width=\"21.46788990825688%\"\u003e\n \u003cp\u003e1.00\u003c/p\u003e\n \u003c/td\u003e\n \u003c/tr\u003e\n \u003ctr\u003e\n \u003ctd valign=\"top\" width=\"24.954128440366972%\"\u003e\n \u003cp\u003e\u003cem\u003eAlg\u0026shy;/Ch/\u003c/em\u003eNFCT10\u003c/p\u003e\n \u003c/td\u003e\n \u003ctd valign=\"top\" width=\"15.045871559633028%\"\u003e\n \u003cp\u003e0.20\u003c/p\u003e\n \u003c/td\u003e\n \u003ctd valign=\"top\" width=\"11.926605504587156%\"\u003e\n \u003cp\u003e0.20\u003c/p\u003e\n \u003c/td\u003e\n \u003ctd colspan=\"3\" valign=\"top\" width=\"26.605504587155963%\"\u003e\n \u003cp\u003e0.04\u003c/p\u003e\n \u003c/td\u003e\n \u003ctd valign=\"top\" width=\"21.46788990825688%\"\u003e\n \u003cp\u003e0.10\u003c/p\u003e\n \u003c/td\u003e\n \u003c/tr\u003e\n \u003ctr\u003e\n \u003ctd valign=\"top\" width=\"24.954128440366972%\"\u003e\n \u003cp\u003e\u003cem\u003eAlg\u0026shy;/Ch/\u003c/em\u003eNFCT36\u003c/p\u003e\n \u003c/td\u003e\n \u003ctd valign=\"top\" width=\"15.045871559633028%\"\u003e\n \u003cp\u003e0.20\u003c/p\u003e\n \u003c/td\u003e\n \u003ctd valign=\"top\" width=\"11.926605504587156%\"\u003e\n \u003cp\u003e0.20\u003c/p\u003e\n \u003c/td\u003e\n \u003ctd colspan=\"3\" valign=\"top\" width=\"26.605504587155963%\"\u003e\n \u003cp\u003e0.22\u003c/p\u003e\n \u003c/td\u003e\n \u003ctd valign=\"top\" width=\"21.46788990825688%\"\u003e\n \u003cp\u003e0.55\u003c/p\u003e\n \u003c/td\u003e\n \u003c/tr\u003e\n \u003ctr\u003e\n \u003ctd valign=\"top\" width=\"24.954128440366972%\"\u003e\n \u003cp\u003e\u003cem\u003eAlg\u0026shy;/Ch/\u003c/em\u003eNFCT50\u003c/p\u003e\n \u003c/td\u003e\n \u003ctd valign=\"top\" width=\"15.045871559633028%\"\u003e\n \u003cp\u003e0.20\u003c/p\u003e\n \u003c/td\u003e\n \u003ctd valign=\"top\" width=\"11.926605504587156%\"\u003e\n \u003cp\u003e0.20\u003c/p\u003e\n \u003c/td\u003e\n \u003ctd colspan=\"3\" valign=\"top\" width=\"26.605504587155963%\"\u003e\n \u003cp\u003e0.40\u003c/p\u003e\n \u003c/td\u003e\n \u003ctd valign=\"top\" width=\"21.46788990825688%\"\u003e\n \u003cp\u003e1.00\u003c/p\u003e\n \u003c/td\u003e\n \u003c/tr\u003e\n \u003ctr\u003e\n \u003ctd width=\"24.954128440366972%\"\u003e\u003cbr\u003e\u003c/td\u003e\n \u003ctd width=\"15.045871559633028%\"\u003e\u003cbr\u003e\u003c/td\u003e\n \u003ctd width=\"11.926605504587156%\"\u003e\u003cbr\u003e\u003c/td\u003e\n \u003ctd width=\"3.669724770642202%\"\u003e\u003cbr\u003e\u003c/td\u003e\n \u003ctd width=\"17.61467889908257%\"\u003e\u003cbr\u003e\u003c/td\u003e\n \u003ctd width=\"5.321100917431193%\"\u003e\u003cbr\u003e\u003c/td\u003e\n \u003ctd width=\"21.46788990825688%\"\u003e\u003cbr\u003e\u003c/td\u003e\n \u003c/tr\u003e\n \u003c/tbody\u003e\n\u003c/table\u003e\n\u003cp\u003e\u003csup\u003e*\u003c/sup\u003e\u003csup\u003eAlg/Ch/Nanocelluloses10: 10% of nanocelluloses and 90% of alginate/chitosan; Alg/Ch/nanoceluloses36: 36% of nanocelluloses and 64% of alginate/chitosan; and Alg/Ch/Nanoceluloses50: 50% of nanocelluloses and 50% of alginate/chitosan.\u0026nbsp;\u003c/sup\u003e\u003c/p\u003e\n\u003cp\u003e\u003cstrong\u003eCharacterization of nanocelluloses, alginate (\u003cem\u003eAlg\u003c/em\u003e), chitosan (\u003cem\u003eCh\u003c/em\u003e) and \u003cem\u003eAlg/Ch\u003c/em\u003e semi-IPN gels\u0026nbsp;\u003c/strong\u003e\u003c/p\u003e\n\u003cp\u003e\u003cstrong\u003eFourier Transformed Infrared Spectroscopy at Attenuated Total Reflection mode (FTIR-ATR)\u0026nbsp;\u003c/strong\u003e\u003c/p\u003e\n\u003cp\u003eThe infrared spectra of nanocelluloses, polyelectrolyes and semi-IPN\u0026rsquo;s were recorded in a spectrometer (Perkin-Elmer Spectrum) at room temperature. The parameters were wavelength range between 4000 and 500 cm\u003csup\u003e-1\u003c/sup\u003e, resolution of 2 cm\u003csup\u003e-1\u003c/sup\u003e and 20 accumulation scans.\u003c/p\u003e\n\u003cp\u003e\u003cstrong\u003eThermogravimetric Analysis (TGA)\u003c/strong\u003e\u003c/p\u003e\n\u003cp\u003eThermogravimetric analyzes of nanocelluloses and hydrogels were performed in a TGA\u0026ndash; DTG-60 (Shimadzu) and in alumina crucibles. The analyses were performed at heating rate of 10\u0026deg;C.min\u003csup\u003e1\u003c/sup\u003e and in the temperature range between 25 and 600\u0026deg;C. A nitrogen flow of 200 mL.min\u003csup\u003e-1\u003c/sup\u003e was used during the scans.\u0026nbsp;\u003c/p\u003e\n\u003cp\u003e\u003cstrong\u003eX-ray diffraction (XRD)\u003c/strong\u003e\u003c/p\u003e\n\u003cp\u003eThe nanocelluloses and gels were analyzed by X-ray diffraction (diffractometer Shimadzu model XRD-6000). The parameters used were Cu K\u0026alpha; radiation (\u0026lambda; = 0.155428nm), voltage of 30 kV and current of 30 mA. The spectra were collected in the scanning mode of 2\u0026ordm;.min\u003csup\u003e-1\u003c/sup\u003e at Bragg angle (2\u0026theta;) range between 5 and 50\u0026ordm;.\u0026nbsp;\u003c/p\u003e\n\u003cp\u003e\u003cstrong\u003eDynamic Mechanical Thermal Analyses (DMTA)\u003c/strong\u003e\u003c/p\u003e\n\u003cp\u003eThe mechanical properties of the gels were studied by DMTA (Netzch model 242). The analyses were carried out in the temperature range between 20 and 80\u0026ordm;C, heating rate of 3\u0026ordm;C.min\u003csup\u003e-1\u003c/sup\u003e, 1 Hz frequency and initial load of 5 N. Two trials were carried out to study the thermomechanical properties of the samples: i) the samples were submitted to heating-cooling/heating-cooling cycles in the furnace of the apparatus (25-80\u0026ordm;C/25-80\u0026ordm;C); and ii) the samples were thermally post-treated in an oven at 80\u0026ordm;C for 4 h and after analyzed by DMTA. The storage and loss moduli (E\u0026rsquo; and E\u0026rsquo;\u0026rsquo;, respectively) were obtained from the viscoelastic behavior of the samples.\u003cstrong\u003e\u0026nbsp;\u003c/strong\u003e\u003c/p\u003e\n\u003cp\u003e\u003cstrong\u003eScanning Electron Microscopy (SEM)\u003c/strong\u003e\u003c/p\u003e\n\u003cp\u003eThe morphological characterization of gels was performed in a double-beam scanning electron microscope (FEI Quanta FEG 3D). The samples were cooled in liquid nitrogen to avoid deformation of the gels during fracture. These samples were fixed on supports and coated by carbon films of approximately 15 nm of thickness. The images were recorded at secondary electron mode and acceleration voltage of 20 kV. The micrographs obtained by SEM were also used to determine the average size of pores in the gels with the Image J software. Fifteen measurements were taken in each sample.\u003c/p\u003e\n\u003cp\u003e\u003cstrong\u003eX-ray computed microtomography (micro-CT)\u003c/strong\u003e\u003c/p\u003e\n\u003cp\u003eAnalyses of the three-dimensional morphology of the samples were carried out after cryo-facture in liquid nitrogen in a microtomograph (SkyScan 1174 Bruker, Germany). The parameters used were 50 keV and 40 W of tungsten X-ray source. A CCD camera of 1.3 megapixel resolution was attached to the lens scintillator with a 1:6 zoom range. Projections were recorded between 0 and 360\u0026deg; at an angular increment of 0.50\u0026deg;. It were studied samples of \u003cem\u003eAlg\u003c/em\u003e/Ch and CNCT\u0026rsquo;s or NFCT\u0026rsquo;s (at 50 wt%). A cross-section of approximately 12 mm edge length was selected and analyses recorded at 40 kV and 800 \u0026micro;A. The pixel size of approximately 10 \u0026micro;m was reached. Image reconstruction was performed using the Feldkamp algorithm. The visualization and quantitative analysis of the volumes were carried out with Thermo Scientific Avizo software (Thermo Fisher Scientific, Oregon - USA).\u003c/p\u003e\n\u003cp\u003e\u003cstrong\u003eBiological Assays\u003c/strong\u003e\u003c/p\u003e\n\u003cp\u003eThe biocompatibility and cytotoxicity of L929 fibroblast cells on \u003cem\u003eAlg/Ch\u003c/em\u003e semi-IPN\u0026rsquo;s will be published as soon as possible. This article presents indirect evidences of the potential use of these materials through analyses of bioadhesion and cell differentiation obtained from SEM images. The fibroblast cells were cultured on the surfaces of semi-IPN\u0026rsquo;s. Samples of (5x5x1) mm\u003csup\u003e3\u003c/sup\u003e were submitted to sterilization by ultraviolet radiation for 30 min. The gels were immersed in fetal bovine serum (FBS) for 1 h and added into cell suspension (5x10\u003csup\u003e6\u0026nbsp;\u003c/sup\u003ecells.mL\u003csup\u003e-1\u003c/sup\u003e). The cell cultures were incubated at 37\u0026ordm;C for 7 days in CO\u003csub\u003e2\u003c/sub\u003e atmosphere. The gels were washed with phosphate buffer solution (PBS). The samples were immersed in ethanol and dried in desiccator with vacuum, coated by thin films of gold and observed in a SEM (Quanta FIB EGF 3D with FEI).\u0026nbsp;\u003c/p\u003e"},{"header":"Results And Discussion","content":"\u003cp\u003eIt is described in the literature that negatively charged carboxylate groups of \u003cem\u003eAlg\u003c/em\u003e and positively charged amine groups of \u003cem\u003eCh\u003c/em\u003e interact in optimized physicochemical conditions. These polyelectrolytes give rise formation of polyelectrolyte macroion complexes (PMC\u0026rsquo;s) also known as polyelectrolyte complexes (PEC\u0026rsquo;s) (Berger et al., 2004; Isogai et al., 2011). It was used in this work \u003cem\u003eAlg\u003c/em\u003e and \u003cem\u003eCh\u003c/em\u003e as polyelectrolytes and calcium chloride (CaCl\u003csub\u003e2\u003c/sub\u003e) as crosslinking agent to prepare biocompatible materials due to economic and ecological concerns and towards a green chemistry. \u0026nbsp;\u003c/p\u003e\n\u003cp\u003eFigure 1 depicts ionic and/or secondary interactions in the microstructure of \u003cem\u003eAlg/Ch\u0026nbsp;\u003c/em\u003eand \u003cem\u003eAlg/Ch/\u003c/em\u003enanocellulose semi-IPN\u0026rsquo;s. \u0026nbsp; It is expected at least some types of interactions as: ionic or electrostatic interactions of carboxylate groups in \u003cem\u003eAlg\u003c/em\u003e structure and calcium ions; interactions of carboxylate groups in TEMPO-oxidized nanocelluloses, carboxylate groups of \u003cem\u003eAlg\u0026nbsp;\u003c/em\u003echains and calcium ions; secondary interactions (hydrogen bonds, van der Waals, induced and permanent dipole) of functional groups in the structure of \u003cem\u003eAlg\u003c/em\u003e/\u003cem\u003eCh\u003c/em\u003e/nanocelluloses; ionic/electrostatic interactions of \u003cem\u003eAlg and Ch\u003c/em\u003e; and ionic/electrostatic interactions of carboxylate groups of CNCT\u0026rsquo;s and NFCT\u0026rsquo;s and amine groups of \u003cem\u003eCh\u003c/em\u003e.\u003c/p\u003e\n\u003cp\u003eAs stated and well explained and justified by French (2017) the repeating unit of cellulose is often considered to be cellobiose instead of glucose. This review presents some arguments regarding the repeating unit in cellulose molecules and crystals based on biosynthesis, shape, crystallographic symmetry, and linkage position. The statement that cellobiose could be the repeating unit of cellulose instead of glucose needs take some care when regarding the chemical bonds in the structure, reactivity and properties (Nishiyama et al. 2002; Kouwijzer et al. 1995). There is almost universal agreement that cellulose is a polymer of \u0026beta;-(1-4)-linked D-glucopyranosyl units and glucose is repeatedly added during biosynthesis of cellulose chains. One common argument used by some authors to consider cellobiose as the repeating unit of celullose is due to the fact that cellobiose is obtained by hydrolysis of cellulose. However, cellobiose is one of the products of acid hydrolysis and prolonged hydrolysis results at glucose. One report (JCBN, 1982) states that \u0026lsquo;\u0026lsquo;polysaccharides composed of only one kind of monosaccharide are described as homopolysaccharides\u0026rsquo;\u0026rsquo; and another report (JCBN, 1983) adds a statement that \u0026lsquo;\u0026lsquo;The repeating unit in a homopolysaccharide is a sugar residue\u0026rdquo;.\u0026nbsp;This review support the glucose residues as the repeating unit of cellulose and also in agreement with International Union of Pure and Apllied Chemistry (IUPAC) and International Union of Biochemistry and Molecular Biology (IUBMB).\u0026nbsp;\u003c/p\u003e\n\u003cp\u003eIt\u0026rsquo;s worth pointed out that Figure 1 is just an attempt to describe the complex structure of \u003cem\u003eAlg/Ch\u003c/em\u003e/nanocellulose semi-IPN\u0026rsquo;s, and possible physicochemical interactions between their components. Any picture could describe completely the microstructure formed. In this paper it was considered glucose as the repeating unit of cellulose to prepare these pictures even if some between then present more than one glucose unit. The pictures are based on articles that describe the egg-box model as one possibility to explain these interactions. One possibility is the formation of dimers around cation ions added in polyelectrolyte solutions to prepare hydrogels (Li et al., 2007; Donati et al., 2005).\u0026nbsp;\u003c/p\u003e\n\u003cp\u003eFig. 1: Physicochemical interactions of \u003cem\u003eAlg\u003c/em\u003e, \u003cem\u003eCh\u003c/em\u003e and nanocelluloses in the microstructure of the gels: (A) ionic crosslinking of \u003cem\u003eAlg\u0026nbsp;\u003c/em\u003eand calcium ions; (B) ionic crosslinking of \u003cem\u003eAlg\u003c/em\u003e, TEMPO-oxidized nanocelluloses and calcium ions; (C) secondary interactions of the functional groups of \u003cem\u003eAlg\u003c/em\u003e, \u003cem\u003eCh\u003c/em\u003e and nanocelluloses; (D) ionic interactions of \u003cem\u003eAlg\u0026nbsp;\u003c/em\u003eand \u003cem\u003eCh\u0026nbsp;\u003c/em\u003egroups; and (E) ionic interactions of negatively charged groups of CNCT\u0026rsquo;s and NFCT\u0026rsquo;s and positively charged groups of \u003cem\u003eCh\u003c/em\u003e chains.\u0026nbsp;\u003c/p\u003e\n\u003cp\u003eThe materials synthesized can be considered physical gels due to reversible feature of the interactions in their microstructures (non-covalent bonds). Figure 2 presents images of the morphology and dimensional stability of the \u003cem\u003eAlg/Ch/nanocellulose\u003c/em\u003e semi-IPN\u0026rsquo;s after optimization of physicochemical parameters as mixing order, concentration, pH, ionic strength and temperature. The Support Information (SI\u003csub\u003e1\u003c/sub\u003e) shows the photographs of \u003cem\u003eAlg/Ch\u003c/em\u003e semi-IPN\u0026rsquo;s without addition of nanocelluloses.\u0026nbsp;\u003c/p\u003e\n\u003cp\u003eFig. 2: Images of gels after freeze drying: (A) and (B) \u003cem\u003eAlg/Ch\u003c/em\u003e/NFCT (at 50 wt%); and (C) and (D) \u003cem\u003eAlg/Ch\u003c/em\u003e/CNCT (at 50 wt%).\u0026nbsp;\u003c/p\u003e\n\u003cp id=\"isPasted\"\u003eThe freeze-dried and thermally post-treated gels present good dimensional stability. However, their surface areas show some insights. The surface of gel at contact with the mold and air during preparation present smooth and rough surfaces, respectively. The microstructure shows slow shrinkage after thermal post-treatment at 80\u003csup\u003eo\u003c/sup\u003eC for 4 h, but the materials still kept their dimensional stabilities. It is worth pointed out that porous structures and rough surface areas are very interesting for nutrient flux and cell attachment, respectively. The shrinkage of some samples is probably due to water elimination, reconformation of polyelectrolytes (extended-coil interconversion), and increase of ionic crosslinking density or secondary interactions in the microstructure of the gels. All these phenomena can contribute to decrease the distance between\u0026nbsp;components in the microstructure and to increase physicochemical interactions between them (ionic, electrostatic, van der Waals, permanent and induced dipole). The microstructure is kept intact when compared with the gels without addition of nanocelluloses. After some optimization studies it were added 36 and 50 wt% of nanocelluloses to prepare dimentionatly stable \u003cem\u003eAlg/Ch/nanocellulose\u003c/em\u003e semi-IPN\u0026rsquo;s. \u0026nbsp;\u003c/p\u003e\n\u003cp\u003eFigure 3 presents FTIR at ATR mode analyses of \u003cem\u003eAlg\u0026nbsp;\u003c/em\u003eand \u003cem\u003eCh\u003c/em\u003e polyelectrolytes (Figure 3.A) and ionic crosslinked \u003cem\u003eAlg/Ch/\u003c/em\u003enanocellulose gels (Figure 3.B). The Support Information (SI\u003csub\u003e2\u003c/sub\u003e) shows FTIR spectra for un- and oxidized nanocelluloses. The high degree of desacetylacetion of \u003cem\u003eCh\u003c/em\u003e used in this work (\u003cem\u003eca.\u003c/em\u003e 93%) to prepare the gels enables electrostatic interactions between \u003cem\u003eAlg\u0026nbsp;\u003c/em\u003eand \u003cem\u003eCh\u003c/em\u003e, and gives rise the formation of semi-IPN\u0026rsquo;s whose present good dimensional stability in water and phosphate buffer solution (PBS). The blend \u003cem\u003eAlg/Ch/\u003c/em\u003eoxidized\u003cem\u003e\u0026nbsp;\u003c/em\u003enanocellulose semi-IPN\u0026rsquo;s show better results. The addition of nanocelluloses at 36 and 50 wt% were beneficial to keep the dimensional stability. The ionic crosslinking due to calcium ions was also important for interactions in the \u003cem\u003eAlg\u0026nbsp;\u003c/em\u003eand \u003cem\u003eAlg/\u003c/em\u003enanocellulose phases (calcium ions/carboxylate groups). The interactions between the crosslinked \u003cem\u003eAlg\u003c/em\u003e or Alg\u003cem\u003e/\u003c/em\u003enanocelullose phases and \u003cem\u003eCh\u003c/em\u003e phase allow formation of a complex and pore network in the gel microstructures. As can be observed in the FTIR spectra all the main absorption bands of \u003cem\u003eAlg\u003c/em\u003e, \u003cem\u003eCh\u003c/em\u003e and nanocelluloses are also observed in the spectra of each constituent itself even if some bands show overlapping or small displacement of wavelength absorption. These spectra show evidences of ionic or secondary interactions and formation of physical gels. Any new absorption band was observed when the components and the blends are compared which is an evidence that covalent bonds were not formed (chemical gels).\u0026nbsp;\u003c/p\u003e\n\u003cp\u003eFig. 3. (A) FTIR spectra at ATR mode of \u003cem\u003eAlg\u0026nbsp;\u003c/em\u003eand \u003cem\u003eCh\u0026nbsp;\u003c/em\u003epolyelectrolytes and (B) crosslinked \u003cem\u003eAlg/Ch\u003c/em\u003e/nanocellulose semi-IPN\u0026rsquo;s.\u0026nbsp;\u003c/p\u003e\n\u003cp id=\"isPasted\"\u003eThe main absorption bands of crosslinked \u003cem\u003eAlg\u0026nbsp;\u003c/em\u003eare a broad absorption band in the wavelength of 3600 and 3200 cm\u003csup\u003e-1\u003c/sup\u003e attributed to stretching vibrations of O-H groups; an absorption band at 2900 cm\u003csup\u003e-1\u003c/sup\u003e attributed to the stretching vibration of the C-H bonds of methyl groups; and two intense absorption bands of carboxyl groups (-COO\u003csup\u003e-\u003c/sup\u003e) at 1600 and 1411 cm\u003csup\u003e-1\u0026nbsp;\u003c/sup\u003eattributed to asymmetric and symmetric vibrations, respectively (Siqueira et al., 2019).\u0026nbsp;\u003c/p\u003e\n\u003cp\u003eThe main absorption bands of \u003cem\u003eCh\u0026nbsp;\u003c/em\u003eare broad absorption bands in 3600 and 3300 cm\u003csup\u003e-1\u003c/sup\u003e attributed to axial stretching vibration of -OH and \u0026ndash;NH groups; the absorption bands at 2940 and 2880 cm\u003csup\u003e-1\u003c/sup\u003e attributed to symmetric and asymmetric axial vibration of \u0026ndash;CH groups, respectively; an intense absorption band at 1660 cm\u003csup\u003e-1\u003c/sup\u003e attributed to stretching vibration of C=O (amide I) that overlaps the absorption band at 1586 cm\u003csup\u003e-1\u003c/sup\u003e attributed to stretching vibration of \u0026ndash;NH groups; an absorption band at 1419 cm\u003csup\u003e-1\u003c/sup\u003e attributed to axial stretching vibration of C-N that overlaps the band at 1377 cm\u003csup\u003e-1\u003c/sup\u003e attributed to angular stretching vibration of \u0026ndash;NH groups.\u0026nbsp;In the wavelength region of 1200 and 800\u0026nbsp;cm\u003csup\u003e-1\u0026nbsp;\u003c/sup\u003ethe absorption bands of \u003cem\u003eAlg\u0026nbsp;\u003c/em\u003eand \u003cem\u003eCh\u003c/em\u003e are attributed to polysaccharide moieties. \u0026nbsp;\u003c/p\u003e\n\u003cp\u003eThe nanocellullose spectra (SI\u003csub\u003e2\u003c/sub\u003e) show some main absorption bands at 3300 cm\u003csup\u003e-1\u0026nbsp;\u003c/sup\u003eattributed to stretching vibrations of \u0026ndash;OH groups; at 2900 cm\u003csup\u003e-1\u0026nbsp;\u003c/sup\u003eattributed to stretching vibrations of \u0026ndash;CH groups; at 1610 and 1411 cm\u003csup\u003e-1\u0026nbsp;\u003c/sup\u003eattributed to symmetric and asymmetric stretching vibrations of carboxylate groups, respectively; and at 1430 cm\u003csup\u003e-1\u0026nbsp;\u003c/sup\u003eattributed to stretching of methyl groups. The absorption bands in the range 1200 to 920 cm\u003csup\u003e-1\u0026nbsp;\u003c/sup\u003eare attributed to stretching vibrations of the polysaccharide structures as also observed in \u003cem\u003eAlg\u003c/em\u003e and \u003cem\u003eCh\u003c/em\u003e spectra \u0026nbsp;(Azzam et al., 2016).\u0026nbsp;\u003c/p\u003e\n\u003cp\u003eThere are some evidences that the interactions between \u003cem\u003eAlg\u003c/em\u003e, \u003cem\u003eCh\u003c/em\u003e and nanocelluloses are secondary interactions based on FTIR analyses. In this work the \u003cem\u003eAlg/Ch/\u003c/em\u003enanocellulose gels show broadening and overlapping of the absorption band at 1600 cm\u003csup\u003e-1\u003c/sup\u003e attributed to stretching vibrations of carboxyl and amine groups. Other evidence is observed at 1400 cm\u003csup\u003e-1\u0026nbsp;\u003c/sup\u003ealso attributed to carboxyl and amine groups. The absorption band in the range 3200 to 3600 cm\u003csup\u003e-1\u003c/sup\u003e shows a broadening in \u003cem\u003eAlg/Ch\u003c/em\u003e/nanocellulose gels. This band is attributed to stretching vibrations of \u0026ndash;OH and \u0026ndash;NH groups, and hydrogen bonds. The displacement and overlapping of characteristic absorption bands of \u003cem\u003eAlg\u003c/em\u003e, \u003cem\u003eCh\u003c/em\u003e and nanocelluloses when compared to the absorption bands of the gels are evidences of secondary interactions between functional groups (mainly carboxylate and amine). Any new absorption band was observed in the gels spectra as postulated before. The high charge density of these polyelectrolytes give rise mainly to formation of physicochemical interactions between them as also observed by Lawrie et al. (2007).\u0026nbsp;\u003c/p\u003e\n\u003cp\u003eFigure 4.A presents X-ray diffractogram patterns of \u003cem\u003eAlg\u003c/em\u003e and \u003cem\u003eCh,\u0026nbsp;\u003c/em\u003eand Figure 4.B crosslinked \u003cem\u003eAlg/Ch\u003c/em\u003e and \u003cem\u003eAlg/Ch\u003c/em\u003e/nanocellulose gels at 50 wt% concentration. The diffractograms show characteristic patterns of polymer materials (when compared as for example with the fine and well defined patterns for metallic or ceramic materials), and more specifically polysaccharides structures (French, 2014).\u0026nbsp;\u003c/p\u003e\n\u003cp\u003eThe \u003cem\u003eCh\u003c/em\u003e diffractogram shows two main peaks at aproximatelly 2\u0026theta; = 10.3\u0026deg; and 19.8\u0026deg; attributed to hydrated and anhydrous crystals, respectively (Li, X., et al., 2009; Chen et al., 2008). The \u003cem\u003eAlg\u003c/em\u003e presents broaden diffraction peaks attributed to guluronic (G) and manuronic (M) blocks. The main peaks at approximately 2\u0026theta; = 13.4\u0026deg; (110) and 22.9\u0026deg; (002) are attributed to diffraction plans crystalline regions of \u003cem\u003eAlg\u003c/em\u003e (Li et al., 2007).\u0026nbsp;\u003c/p\u003e\n\u003cp\u003eThe nanocelluloses present main peaks at approximately 34.5\u0026ordm; (004), 22.6\u0026ordm; (200), 16.5\u0026ordm;(110) and 14.5\u0026ordm; (1-10) (Zeng et al.,2021;\u0026nbsp;Siqueira et al., 2019; French, 2017 and 2014; Sun et al., 2016;\u0026nbsp;Brito et al., 2012; Lahiji et al., 2010;\u0026nbsp;P\u0026auml;\u0026auml;k\u0026ouml; et al., 2007).\u0026nbsp;\u003c/p\u003e\n\u003cp\u003eXRD patterns can show small displacements of 2\u0026theta; values, intensity and/or crystalline/non-crystalline ratio when articles are compared due to experimental procedures, physicochemical parameters for synthesis of polymers or cellulose source for extraction of CNC\u0026rsquo;s and preparation of CNF\u0026rsquo;s.\u0026nbsp;\u003c/p\u003e\n\u003cp\u003eSome tools as the software and model used during data interpretation and the experimental parameters for sample preparation and parameters for XRD analyses can also affect the results. As one example and\u0026nbsp;stated by French (2014) the patterns calculated by Mercury\u003csup\u003e\u0026reg;\u003c/sup\u003e program are isotropic but there is no way to input crystallite shape information that can affect the relative peak heights and widths.\u0026nbsp;\u003c/p\u003e\n\u003cp\u003eIn this work X-ray analyses are used for comparison purposes, and to take some additional qualitative information about the microstructural organization of the complex blends between un- and crosslinked \u003cem\u003eAlg\u003c/em\u003e/\u003cem\u003eCh\u003c/em\u003e/nanocelluloses to prepare hydrogels and their biocompatibility.\u0026nbsp;Attempts to take quantitative information on XRD analyses will be issues of future works as well as cell viability and other correlations between microstructure and biological features.\u0026nbsp;\u003c/p\u003e\n\u003cp\u003eFigure 4. X-ray diffractograms: (A) alginate and chitosan; and (B) crosslinked \u003cem\u003eAlg/Ch\u003c/em\u003e/nanocellulose semi-IPN gels.\u0026nbsp;\u003c/p\u003e\n\u003cp id=\"isPasted\"\u003eAs observed crosslinked \u003cem\u003eAlg/Ch\u003c/em\u003e gels and mainly \u003cem\u003eAlg\u003c/em\u003e diffractogram pattern without addition of nanocelluloses have broaden diffraction peaks suggesting defective crystallization and probably low crystallinity.\u0026nbsp;\u003c/p\u003e\n\u003cp\u003eSmitha et al. (2005) stated based on their studies that the mixture of \u003cem\u003eAlg\u003c/em\u003e and \u003cem\u003eCh\u003c/em\u003e decreases the crystallinity when compared to the crystallinity of this polymers. The crosslinked \u003cem\u003eAlg/Ch\u0026nbsp;\u003c/em\u003egels show lower cristallinity than pure \u003cem\u003eCh\u0026nbsp;\u003c/em\u003eand \u003cem\u003eAlg\u003c/em\u003e probably due to fast physicochemical interactions with calcium ions and the gelation process.\u0026nbsp;\u003c/p\u003e\n\u003cp\u003eLi et al. (2009) observed\u0026nbsp;that typical peaks of \u003cem\u003eCh\u003c/em\u003e disappeared after mixture with \u003cem\u003eAlg\u0026nbsp;\u003c/em\u003eand the PEC\u0026rsquo;s showed an amorphous morphology similar to \u003cem\u003eAlg\u003c/em\u003e. It was stated that the introduction of \u003cem\u003eAlg\u003c/em\u003e into \u003cem\u003eCh\u0026nbsp;\u003c/em\u003edisrupted the crystalline structure of \u003cem\u003eCh\u003c/em\u003e.\u0026nbsp;\u003c/p\u003e\n\u003cp\u003eLi et al. (2007) also observed by XRD analyses formation of junction zones with different crystallinity in Ca-alginate gels. This was confirmed by the measurements of Ca-alginate gel beads prepared at different pH and slow crosslinking rate, which leads to a higher crystallinity and more perfect ordering. Reversible aggregation of junction zones and their impacts on XRD patterns were also observed during dehydration and rehydration (or swelling).\u0026nbsp;\u003c/p\u003e\n\u003cp\u003eNagahama et al. (2009) observed based on XRD results\u0026nbsp;that there was good compatibility and interaction between gelatin and chitosan molecules in the membranes synthesized. The peak intensity ratio of chitosan membrane was reduced when gelatin was added. A little decrease in the crystallinity of chitosan/gelatin membranes was attributed to formation of hydrogen bonds.\u0026nbsp;\u003c/p\u003e\n\u003cp\u003eAfter addition of CNC\u0026rsquo;s, CNCT\u0026rsquo;s, CNF\u0026rsquo;s and CNFT\u0026rsquo;s in Alg/Ch gels at 50 wt% is observed a more perfect ordering, characteristic peaks of these nanostructures and diffractogram patterns more representative of high crystallinity. These results corroborate with a more uniform and organized microstructure and probably formation of hydrogen bonds and ionic interactions between un- and oxidized nanostructures and \u003cem\u003eAlg/Ch\u003c/em\u003e-based gels.\u0026nbsp;\u0026nbsp;\u003c/p\u003e\n\u003cp\u003eThe thermal stability of \u003cem\u003eAlg\u003c/em\u003e, \u003cem\u003eCh\u003c/em\u003e and \u003cem\u003eAlg/Ch\u003c/em\u003e/nanocellulose semi-IPN\u0026rsquo;s were analyzed from TGA-DTG curves. The Figures in SI\u003csub\u003e3\u003c/sub\u003e present the curves of TGA obtained in nitrogen atmosphere and their first derivative (DTG). It was observed three main events of weight loss. The first one takes place between 20 and 175\u0026ordm;C and approximately 15% of weight loss attributed to water elimination and small fragments of glycoside structures. The second one in the range of 175 to 385\u0026ordm;C and \u003cem\u003eca\u003c/em\u003e. 40% weight loss can be considered the main event. It is attributed to degradation reactions of glycoside structure of \u003cem\u003eAlg\u003c/em\u003e and \u003cem\u003eCh\u0026nbsp;\u003c/em\u003epolyelectrolytes and nanocelluloses. The third one at approximately 385\u0026ordm;C is attributed to degradation of the crystalline regions of these components whose are more thermally stable. It is worth pointed out that in synthetic air or oxidant atmosphere the degradation of glycoside-based structures is generally displaced towards lower temperatures than nitrogen atmosphere. The residues (ash content) at approximately 600\u0026ordm;C are probably due to calcium inorganic salts as also described by Han et al. (2010).\u0026nbsp;\u003c/p\u003e\n\u003cp\u003eThe thermal degradation of glycoside-based structures was also studied by other authors. The presence of hemicelluloses in the structure of NFC\u0026rsquo;s can displace the temperature of thermal degradations towards lowest values mainly in oxidant atmosphere (Yang et al., 2007). Isogai et al. (2011) describe the formation of sodium carboxylates in the structure of TEMPO oxidized nanocelluloses. These functional groups decrease the thermal stability of the nanocelluloses and displace the degradation temperature towards lowest values. In our work an increase of thermal stability and approximately 30 up to 40% of ash content at 600\u0026ordm;C were observed for Alg/Ch semi-IPN\u0026rsquo;s prepared by addition of TEMPO-oxidized nanocelluloses (CNCT\u0026rsquo;s or NFCT\u0026rsquo;s). This can be partially explained by the ionic crosslinking of the carboxylate groups/calcium ions. These ionic or electrostatic interactions can increase the thermal stability of gels and displace the degradation temperatures of the microstructure towards highest values. The two concentrations of nanocelluloses used in this work (36 and 50 wt%) show similar results when studied by FTIR-ATR, DRX and TGA-DTG. However, the better dimensional stability and mechanical properties were observed when 50 wt% of nanocelluloses were added to prepare gels. Based on these results were carried out on \u003cem\u003eAlg/Ch\u003c/em\u003e/oxidized nanocellulose gels at 50 wt% analyses of DMTA, SEM and X-ray micro CT images and cell growth assays. \u0026nbsp;\u003c/p\u003e\n\u003cp\u003eTable 2 shows storage moduli obtained by dynamic mechanical thermal analyses (DMTA) of the gels. The samples were thermally post-treated in the furnace of the apparatus during a consecutive heating-cooling/heating-cooling cycle between 25 up to 80\u0026ordm;C. The results were compared at 35, 37 and 42\u0026ordm;C whose are temperatures for some biomedical applications.\u0026nbsp;\u003c/p\u003e\n\u003cp\u003eTab. 2: Storage modulus (E\u0026rsquo;) obtained from DMTA curves during heating-cooling/heating-cooling cycles (25-80)\u0026ordm;C/(25-80)\u0026ordm;C (E\u0026rsquo;\u003csub\u003e1\u003c/sub\u003e: storage modulus during first heating/cooling cycle (25-80)\u0026ordm;C; and E\u0026rsquo;\u003csub\u003e2\u003c/sub\u003e: storage modulus during second heating/cooling cycle).\u0026nbsp;\u003c/p\u003e\n\u003ctable border=\"1\" cellpadding=\"0\" cellspacing=\"0\"\u003e\n \u003ctbody\u003e\n \u003ctr\u003e\n \u003ctd rowspan=\"2\" valign=\"top\" width=\"29.197080291970803%\"\u003e\n \u003cp\u003eSemi-IPN\u0026rsquo;s\u003c/p\u003e\n \u003cp\u003e(50 wt% nanocellulose)\u0026nbsp;\u003c/p\u003e\n \u003c/td\u003e\n \u003ctd colspan=\"2\" valign=\"top\" width=\"22.445255474452555%\"\u003e\n \u003cp\u003e35\u0026ordm;C\u003c/p\u003e\n \u003c/td\u003e\n \u003ctd colspan=\"2\" valign=\"top\" width=\"24.27007299270073%\"\u003e\n \u003cp\u003e37\u0026ordm;C\u003c/p\u003e\n \u003c/td\u003e\n \u003ctd colspan=\"2\" valign=\"top\" width=\"24.087591240875913%\"\u003e\n \u003cp\u003e42\u0026ordm;C\u003c/p\u003e\n \u003c/td\u003e\n \u003c/tr\u003e\n \u003ctr\u003e\n \u003ctd valign=\"top\" width=\"14.948453608247423%\"\u003e\n \u003cp\u003eE\u0026rsquo;\u003csub\u003e1\u0026nbsp;\u003c/sub\u003e(MPa)\u003c/p\u003e\n \u003c/td\u003e\n \u003ctd valign=\"top\" width=\"16.75257731958763%\"\u003e\n \u003cp\u003eE\u0026rsquo;\u003csub\u003e2\u0026nbsp;\u003c/sub\u003e(MPa)\u003c/p\u003e\n \u003c/td\u003e\n \u003ctd valign=\"top\" width=\"17.2680412371134%\"\u003e\n \u003cp\u003eE\u0026rsquo;\u003csub\u003e1\u0026nbsp;\u003c/sub\u003e(MPa)\u003c/p\u003e\n \u003c/td\u003e\n \u003ctd valign=\"top\" width=\"17.010309278350515%\"\u003e\n \u003cp\u003eE\u0026rsquo;\u003csub\u003e2\u0026nbsp;\u003c/sub\u003e(MPa)\u003c/p\u003e\n \u003c/td\u003e\n \u003ctd valign=\"top\" width=\"17.010309278350515%\"\u003e\n \u003cp\u003eE\u0026rsquo;\u003csub\u003e1\u0026nbsp;\u003c/sub\u003e(MPa)\u003c/p\u003e\n \u003c/td\u003e\n \u003ctd valign=\"top\" width=\"17.010309278350515%\"\u003e\n \u003cp\u003eE\u0026rsquo;\u003csub\u003e2\u0026nbsp;\u003c/sub\u003e(MPa)\u003c/p\u003e\n \u003c/td\u003e\n \u003c/tr\u003e\n \u003ctr\u003e\n \u003ctd valign=\"top\" width=\"29.197080291970803%\"\u003e\n \u003cp\u003e\u003cem\u003eAlg/Ch\u003c/em\u003e\u003c/p\u003e\n \u003c/td\u003e\n \u003ctd valign=\"top\" width=\"10.583941605839415%\"\u003e\n \u003cp\u003e0.08\u003c/p\u003e\n \u003c/td\u003e\n \u003ctd valign=\"top\" width=\"11.861313868613138%\"\u003e\n \u003cp\u003e2.50\u003c/p\u003e\n \u003c/td\u003e\n \u003ctd valign=\"top\" width=\"12.226277372262773%\"\u003e\n \u003cp\u003e0.15\u003c/p\u003e\n \u003c/td\u003e\n \u003ctd valign=\"top\" width=\"12.043795620437956%\"\u003e\n \u003cp\u003e3.00\u003c/p\u003e\n \u003c/td\u003e\n \u003ctd valign=\"top\" width=\"12.043795620437956%\"\u003e\n \u003cp\u003e0.30\u003c/p\u003e\n \u003c/td\u003e\n \u003ctd valign=\"top\" width=\"12.043795620437956%\"\u003e\n \u003cp\u003e3.50\u003c/p\u003e\n \u003c/td\u003e\n \u003c/tr\u003e\n \u003ctr\u003e\n \u003ctd valign=\"top\" width=\"29.197080291970803%\"\u003e\n \u003cp\u003e\u003cem\u003eAlg/Ch\u003c/em\u003e/CNC\u0026nbsp;\u003c/p\u003e\n \u003c/td\u003e\n \u003ctd valign=\"top\" width=\"10.583941605839415%\"\u003e\n \u003cp\u003e0.10\u003c/p\u003e\n \u003c/td\u003e\n \u003ctd valign=\"top\" width=\"11.861313868613138%\"\u003e\n \u003cp\u003e5.88\u003c/p\u003e\n \u003c/td\u003e\n \u003ctd valign=\"top\" width=\"12.226277372262773%\"\u003e\n \u003cp\u003e0.40\u003c/p\u003e\n \u003c/td\u003e\n \u003ctd valign=\"top\" width=\"12.043795620437956%\"\u003e\n \u003cp\u003e6.37\u003c/p\u003e\n \u003c/td\u003e\n \u003ctd valign=\"top\" width=\"12.043795620437956%\"\u003e\n \u003cp\u003e0.80\u003c/p\u003e\n \u003c/td\u003e\n \u003ctd valign=\"top\" width=\"12.043795620437956%\"\u003e\n \u003cp\u003e8.50\u003c/p\u003e\n \u003c/td\u003e\n \u003c/tr\u003e\n \u003ctr\u003e\n \u003ctd valign=\"top\" width=\"29.197080291970803%\"\u003e\n \u003cp\u003e\u003cem\u003eAlg/Ch\u003c/em\u003e/CNCT\u0026nbsp;\u003c/p\u003e\n \u003c/td\u003e\n \u003ctd valign=\"top\" width=\"10.583941605839415%\"\u003e\n \u003cp\u003e0.10\u003c/p\u003e\n \u003c/td\u003e\n \u003ctd valign=\"top\" width=\"11.861313868613138%\"\u003e\n \u003cp\u003e6.50\u003c/p\u003e\n \u003c/td\u003e\n \u003ctd valign=\"top\" width=\"12.226277372262773%\"\u003e\n \u003cp\u003e0.11\u003c/p\u003e\n \u003c/td\u003e\n \u003ctd valign=\"top\" width=\"12.043795620437956%\"\u003e\n \u003cp\u003e8.10\u003c/p\u003e\n \u003c/td\u003e\n \u003ctd valign=\"top\" width=\"12.043795620437956%\"\u003e\n \u003cp\u003e0.11\u003c/p\u003e\n \u003c/td\u003e\n \u003ctd valign=\"top\" width=\"12.043795620437956%\"\u003e\n \u003cp\u003e10.1\u003c/p\u003e\n \u003c/td\u003e\n \u003c/tr\u003e\n \u003ctr\u003e\n \u003ctd valign=\"top\" width=\"29.197080291970803%\"\u003e\n \u003cp\u003e\u003cem\u003eAlg/Ch\u003c/em\u003e/NFC\u0026nbsp;\u003c/p\u003e\n \u003c/td\u003e\n \u003ctd valign=\"top\" width=\"10.583941605839415%\"\u003e\n \u003cp\u003e0.10\u003c/p\u003e\n \u003c/td\u003e\n \u003ctd valign=\"top\" width=\"11.861313868613138%\"\u003e\n \u003cp\u003e7.05\u003c/p\u003e\n \u003c/td\u003e\n \u003ctd valign=\"top\" width=\"12.226277372262773%\"\u003e\n \u003cp\u003e0.10\u003c/p\u003e\n \u003c/td\u003e\n \u003ctd valign=\"top\" width=\"12.043795620437956%\"\u003e\n \u003cp\u003e7.20\u003c/p\u003e\n \u003c/td\u003e\n \u003ctd valign=\"top\" width=\"12.043795620437956%\"\u003e\n \u003cp\u003e0.10\u003c/p\u003e\n \u003c/td\u003e\n \u003ctd valign=\"top\" width=\"12.043795620437956%\"\u003e\n \u003cp\u003e8.00\u003c/p\u003e\n \u003c/td\u003e\n \u003c/tr\u003e\n \u003ctr\u003e\n \u003ctd valign=\"top\" width=\"29.197080291970803%\"\u003e\n \u003cp\u003e\u003cem\u003eAlg/Ch\u003c/em\u003e/NFCT\u0026nbsp;\u003c/p\u003e\n \u003c/td\u003e\n \u003ctd valign=\"top\" width=\"10.583941605839415%\"\u003e\n \u003cp\u003e0.09\u003c/p\u003e\n \u003c/td\u003e\n \u003ctd valign=\"top\" width=\"11.861313868613138%\"\u003e\n \u003cp\u003e6.88\u003c/p\u003e\n \u003c/td\u003e\n \u003ctd valign=\"top\" width=\"12.226277372262773%\"\u003e\n \u003cp\u003e0.10\u003c/p\u003e\n \u003c/td\u003e\n \u003ctd valign=\"top\" width=\"12.043795620437956%\"\u003e\n \u003cp\u003e7.52\u003c/p\u003e\n \u003c/td\u003e\n \u003ctd valign=\"top\" width=\"12.043795620437956%\"\u003e\n \u003cp\u003e0.10\u003c/p\u003e\n \u003c/td\u003e\n \u003ctd valign=\"top\" width=\"12.043795620437956%\"\u003e\n \u003cp\u003e9.01\u003c/p\u003e\n \u003c/td\u003e\n \u003c/tr\u003e\n \u003c/tbody\u003e\n\u003c/table\u003e\n\u003cp\u003eThe biomaterials prepared by natural polymers or their derivatives and biopolymers generally present favorable microstructure for cell bioadhesion and proliferation. The poor mechanical properties and dimensional stability are generally drawbacks for their applications. The storage moduli (E\u0026rsquo;) show low values during first heating/cooling cycle as observed by DMTA analyses. This can be explained by the polyelectrolyte structures and fast ionic crosslinking in the calcium chloride bath. In these conditions polymer conformation and full ionic crosslinking can be limited before an ultimate\u0026nbsp;state. When thermal post-treatment is carried out the polyelectrolyte structures are\u0026nbsp;submitted to relaxations close to glass transitions values and the polymer chains can approach each other and to interact more effectively. Some additional degree of ionic crosslinking of calcium ions and carboxylate groups of \u003cem\u003eAlg\u0026nbsp;\u003c/em\u003eand CNCT\u0026rsquo;s and NFCT\u0026rsquo;s is expected. These behaviors (polymer relaxation and conformation and additional ionic crosslinking) can explain the remarkable increase of E\u0026rsquo; after the first heating cycle up to 80\u0026ordm;C and during the second heating-cooling cycle (Siqueira and Botaro, 2013).\u0026nbsp;\u003c/p\u003e\n\u003cp\u003eThe increase of mechanical properties of semi-IPN\u0026rsquo;s was also observed and described by authors when nanocelluloses are added in some polyelectrolytes (De France et al., 2017; Kumar et al. 2017). It can be observed in this work synergistic effects that increase the mechanical properties when oxidized nanocelluloses are added in the microstructure of gels and controlled thermal post-treatments are performed on the samples.\u0026nbsp;\u003c/p\u003e\n\u003cp\u003eIt was decided to use CNCT\u0026rsquo;s and NFCT\u0026rsquo;s during porosity and cell growth studies after analyses of the influences of thermal post-treatment on the mechanical properties of \u003cem\u003eAlg/Ch\u003c/em\u003e/nanocellulose semi-IPN\u0026rsquo;s. Even if all nanocellulose based-gels presented improved mechanical properties after thermal post-treatment the best results were observed when TEMPO oxidized nanocelluloses based-gels are submitted to thermal post-treatment for 4 h at 80\u0026ordm;C in an oven. Klemm et al. (2011), Lin and Dufresne (2014) and Chinga-Carrasco (2018) also described the great potential of biopolymer and nanocellulose applications to prepare biomaterials for regenerative medicine and would healing treatments. \u0026nbsp;\u003c/p\u003e\n\u003cp\u003eFigure 5 presents micrographs obtained by SEM analyses of \u003cem\u003eAlg/Ch\u003c/em\u003e/nanocellulose semi-IPN\u0026rsquo;s. The pore sizes, their distribution and interconnectivity are very important for effective flow of nutrients and biological fluids. Figure 5.a shows the micrograph of \u003cem\u003eAlg/Ch\u003c/em\u003e semi-IPN\u0026rsquo;s. It can be observed porous structures and thin walls that are characteristic of alginate-based gels. The addition of nanocelluloses (Figures 5.b-e) enable formation of porous structures and pore sizes in the range of 40 up to 150 \u0026micro;m when compared to gels without addition of nanocelluloses that show pore sizes in the range of 20 up to 40 \u0026micro;m. Li et al. (2005) stated based on their studies that porous substrates in the range of 100 up to 300 \u0026micro;m are beneficial for cell growth and potential biomedical applications.\u0026nbsp;\u003c/p\u003e\n\u003cp\u003eThe gels prepared by addition of nanocelluloses (CNC, CNCT, NFC and NFCT) presented bigger pore sizes and rough walls than gels without them. These features can be partially explained by the impressive properties of nanocelluloses (high surface area, reactivity, stiffness and mechanical properties) (Siqueira et al., 2019; Lin and Duffresne, 2014). The synergistic effects of the addition of nanocelluloses, mainly TEMPO-oxidized, calcium crosslinking and thermal post-treatment improve the mechanical properties and increases the surface available for cell attachment.\u003c/p\u003e\n\u003cp\u003eFig. 5. Micrographs obtained by SEM of semi-IPN\u0026rsquo;s at 50 wt% nanocellulose concentration: (A) \u003cem\u003eAlg/Ch\u003c/em\u003e semi-IPN\u0026rsquo;s, (B) \u003cem\u003eAlg/Ch\u003c/em\u003e/CNC, (C) \u003cem\u003eAlg/Ch\u003c/em\u003e/CNCT, (D) \u003cem\u003eAlg/Ch/\u003c/em\u003eNFC, (E) \u003cem\u003eAlg/Ch\u003c/em\u003e/NFCT (magnification of 500x; the insets represent a magnification of 1000x).\u003c/p\u003e\n\u003cp id=\"isPasted\"\u003eFigure 6 shows images obtained by X-ray micro CT of \u003cem\u003eAlg/Ch\u003c/em\u003e/nanocellulose semi-IPN\u0026rsquo;s. This powerful technique enables to take qualitative and quantitative information of volume, size, shape, distribution and interconnectivity of pores (Isaac et al., 2015). The results corroborate with SEM images as a complementary tool to take some\u0026nbsp;additional information about the internal microstructures of the gels. In this work the results of X-ray micro CT will be used for comparative purposes.\u0026nbsp;\u003c/p\u003e\n\u003cp\u003eThe Figure 6.A shows an oriented structure of pores for \u003cem\u003eAlg/Ch\u003c/em\u003e/CNCT semi-IPN\u0026rsquo;s and cracks probably due to the stiffness of CNCT\u0026rsquo;s (rigid rod-like structures) added in the gels. The Figure 6.B presents \u003cem\u003eAlg/Ch\u003c/em\u003e/NFCT semi-IPN\u0026rsquo;s. It can be observed higher pore sizes, more uniform distribution and ribbed and roughness surfaces for these gels than CNCT-based gels.\u0026nbsp;\u003c/p\u003e\n\u003cp\u003eIt was used the software Image J to take some quantitative information when compared \u003cem\u003eAlg/Ch/\u003c/em\u003enanocellulose IPN\u0026rsquo;s for comparative purposes and based on the work of Isaac et al. (2015). The CNCT\u0026rsquo;s and NFCT\u0026rsquo;s-based gels present 50 and 80% of pores in their microstructures, respectively. Both oxidized nanocelluloses-based gels showed thickness of pore walls of 16 up to 20 \u0026micro;m but NFCT\u0026rsquo;s-based gels presented the highest homogeneity.\u0026nbsp;\u003c/p\u003e\n\u003cp\u003eFig. 6: X-ray micro CT images of gels prepared at 50 wt% concentration: (a) \u003cem\u003eAlg/Ch\u003c/em\u003e/CNCT semi-IPN\u0026rsquo;s, (b) \u003cem\u003eAlg/Ch\u003c/em\u003e/NFCT semi-IPN\u0026rsquo;s, and (C) thickness of pore walls of Alg/Ch/nanocellulose semi-IPN\u0026rsquo;s.\u003c/p\u003e\n\u003cp id=\"isPasted\"\u003eIt is important for biomedical applications a combined effect of mechanical and biological properties to enable, for example, direct contact or replacement of some tissues of human body. It were carried out cytotoxicity and cell growth assays to analyze the properties of the materials synthesized in this work and their potential biomedical applications. At this time will be show some of the results obtained for cell growth.\u0026nbsp;\u003c/p\u003e\n\u003cp\u003eFigure 7 shows cell growth assays of L929 fibroblast cells. This kind of cells were cultured on substrates and the best results were observed on \u003cem\u003eAlg/Ch/\u003c/em\u003enanocellulose gels (CNCT\u0026rsquo;s and NFCT\u0026rsquo;s at 50 wt%) (Figure 7.C-F) when compared to gels prepared without addition of nanocelluloses (Figure 7.A and B). It can be observed cell attachment, proliferation and differentiation of L929 fibroblast cells mainly on \u003cem\u003eAlg/Ch\u003c/em\u003e/NFCT IPN\u0026rsquo;s (Figure 7.E and F). The cell growth was observed during all the time of the studies performed in this work (up to 30 days).\u0026nbsp;\u003c/p\u003e\n\u003cp\u003eThe L929 fibroblast cells are attached in the gel microstructure as observed in the micrographs. The rough surface of the gels, the polyelectrolyte charges, the nanocellulose and the pore surface are essential parameters for attachment. The morphology of cells is kept approximately spherical or extended which are some evidences of proliferation, differenciation and/or biocompatibility on the substrate (Dan et al., 2016; Domingues et al., 2014).\u0026nbsp;\u003c/p\u003e\n\u003cp\u003eIt was clearly possible to observe cell attachment of L929 fibroblast cells on \u003cem\u003eAlg/Ch\u003c/em\u003e/NFCT IPN\u0026rsquo;s mainly due to surface area of the NFCT\u0026rsquo;s and functional groups as carboxylate and amino (Figure 7.E and F). These groups influence the cell adhesion, proliferation and differentiation due to physicochemical interactions of proteins of L929 fibroblast cells (Rashad et al., 2017). It can be also observed surprisingly the formation of thin and long filaments derived from fibroblast cells that improve the attachment (SI\u003csub\u003e4\u003c/sub\u003e). These filaments show high degree of adherence and biocompatibility of the cells on these gels.\u0026nbsp;\u003c/p\u003e\n\u003cp\u003eFigure 7. Micrographs obtained by SEM of semi-IPN\u0026rsquo;s: (A) and (B) \u003cem\u003eAlg/Ch\u003c/em\u003e, (C) and (D) \u003cem\u003eAlg/Ch\u003c/em\u003e/CNCT (at 50 wt%), and (E) and (F) \u003cem\u003eAlg/Ch\u003c/em\u003e/NFCT (at 50 wt%).\u0026nbsp;\u003c/p\u003e"},{"header":"Conclusions","content":"\u003cp\u003eThe \u003cem\u003eAlg/Ch\u003c/em\u003e/nanocellulose semi-IPN\u0026rsquo;s present good dimensional stability and rough surface area, and enable cell attachment, growth, proliferation and differentiation for time interval as long as 30 days. The physicochemical parameters (pH, ionic strength, charge density, order of mixture, oxidation reaction and nanocellulose concentration), ionic crosslinking and thermal post-treatment influences directly the microstructure of the gels as observed by SEM and X-ray micro CT images. The roughness of the surface and complex structure of pores of these gels when nanocelluloses are added collaborate to cell attachment and growth.\u0026nbsp;\u003c/p\u003e"},{"header":"Declarations","content":"\u003cp\u003e\u003cstrong\u003eACKNOWLEDGEMENT\u0026nbsp;\u003c/strong\u003e\u003c/p\u003e\n\u003cp\u003eREDEMAT-UFOP, UFSCar, FAPESP (Processo:16/19896-2 Linha de fomento: Aux\u0026iacute;lio \u0026agrave; Pesquisa - Regular), CNPq and \u0026quot;This study was financed in part by the Coordena\u0026ccedil;\u0026atilde;o de Aperfei\u0026ccedil;oamento de Pessoal de N\u0026iacute;vel Superior - Brasil (CAPES) - Finance Code 001\u0026quot;\u003c/p\u003e\n\u003cp\u003e\u003cstrong\u003eFunding\u003c/strong\u003e:\u0026nbsp;REDEMAT-UFOP. UFSCar, FAPESP, CNPq and CAPES\u003c/p\u003e\n\u003cp\u003e\u003cstrong\u003eConflicts of interest/Competing interests\u003c/strong\u003e: Not applicable\u003c/p\u003e\n\u003cp\u003e\u003cstrong\u003eAvailability of data and material\u003c/strong\u003e: Not applicable\u003c/p\u003e\n\u003cp\u003e\u003cstrong\u003eCode availability\u003c/strong\u003e: Not applicable\u003c/p\u003e\n\u003cp\u003e\u003cstrong\u003eAuthors\u0026apos; contributions\u003c/strong\u003e: \u0026nbsp;\u003c/p\u003e\n\u003cp\u003ePriscila Siqueira\u003csup\u003eb\u003c/sup\u003e: experimental and analyses\u003c/p\u003e\n\u003cp\u003eAna de Lima\u003csup\u003ea\u003c/sup\u003e: experimental and analyses\u003c/p\u003e\n\u003cp\u003eFelipe Medeiros\u003csup\u003ea\u003c/sup\u003e: experimental and thermal and mecanical analyses\u003c/p\u003e\n\u003cp\u003eAugusta Isaac\u003csup\u003ec\u003c/sup\u003e: scientific discussions and images analyses\u003c/p\u003e\n\u003cp\u003eKatia Novack\u003csup\u003eb\u003c/sup\u003e: co-supervisor of the project\u003c/p\u003e\n\u003cp\u003eVagner Botaro\u003csup\u003ed\u003c/sup\u003e: supervisor of the project\u003c/p\u003e\n\u003cp\u003e\u0026Eacute;der Siqueira\u003csup\u003ea\u003c/sup\u003e: writing, submission, expeirmental and analyses\u003c/p\u003e\n\u003cp\u003eThe first draft of the manuscript was written by Eder Siqueira and all authors commented on previous versions of the manuscript. All authors read and approved the final manuscript.\u003c/p\u003e\n\u003cp\u003e\u003cstrong\u003eEthics approval\u003c/strong\u003e The authors declare that they have no known competing financial interests or personal relationships that could have appeared to influence the work reported in this paper.\u003c/p\u003e\n\u003cp\u003e\u003cstrong\u003eConsent to participate\u003c/strong\u003e: All the authors declare to consente participation\u003c/p\u003e\n\u003cp\u003e\u003cstrong\u003eConsent for publication\u003c/strong\u003e All the authors declare to consente publication of this work\u003c/p\u003e"},{"header":"References","content":"\u003cp\u003eAzzam, F., Siqueira, E., Fort, S., Hassaini, R., Pignon, F., Travelet, C., Putaux J.-L, Jean, B., Tunable Aggregation and Gelation of Thermoresponsive Suspensions of Polymer-Grafted Cellulose Nanocrystals, Biomac. 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Coll. Int. Sci. (2011), 353:116-123(\u003ca href=\"https://doi.org/10.1016/j.jcis.2010.09.035\" target=\"_blank\" title=\"Persistent link using digital object identifier\"\u003ehttps://doi.org/10.1016/j.jcis.2010.09.035\u003c/a\u003e). \u003c/p\u003e"}],"fulltextSource":"","fullText":"","funders":[],"hasAdminPriorityOnWorkflow":false,"hasManuscriptDocX":true,"hasOptedInToPreprint":true,"hasPassedJournalQc":"","hasAnyPriority":false,"hideJournal":true,"highlight":"","institution":"","isAcceptedByJournal":false,"isAuthorSuppliedPdf":false,"isDeskRejected":"","isHiddenFromSearch":false,"isInQc":false,"isInWorkflow":false,"isPdf":false,"isPdfUpToDate":true,"isWithdrawnOrRetracted":false,"journal":{"display":true,"email":"[email protected]","identity":"researchsquare","isNatureJournal":false,"hasQc":true,"allowDirectSubmit":true,"externalIdentity":"","sideBox":"","snPcode":"","submissionUrl":"/submission","title":"Research Square","twitterHandle":"researchsquare","acdcEnabled":true,"dfaEnabled":false,"editorialSystem":"","reportingPortfolio":"","inReviewEnabled":false,"inReviewRevisionsEnabled":true},"keywords":"hydrogels, alginate, chitosan, nanocelluloses, biocompatibility","lastPublishedDoi":"10.21203/rs.3.rs-706130/v1","lastPublishedDoiUrl":"https://doi.org/10.21203/rs.3.rs-706130/v1","license":{"name":"CC BY 4.0","url":"https://creativecommons.org/licenses/by/4.0/"},"manuscriptAbstract":"\u003cp\u003eThe hydrogels are advanced materials used in biomedical applications during wound healing, controlled drug release and to prepare scaffolds. In this work are prepared hydrogels of alginate/chitosan (\u003cem\u003eAlg\u003c/em\u003e/\u003cem\u003eCh\u003c/em\u003e) semi-interpenetrating polymer networks (semi-IPN’s) and nanocelluloses. The hydrogels after preparation by freeze drying are namely simply as gels. The cellulose nanocrystals (CNC’s) are obtained from acid hydrolysis of bleached \u003cem\u003eEucalyptus \u003c/em\u003epulps and oxidized cellulose nanocrystals (CNCT’s) prepared by (2,2,6,6-tetramethylpiperidin-1-yl)oxyl radical catalyzed reaction as known as TEMPO reaction. The cellulose nanofibers (NFC’s) are obtained from mechanical shearing of cellulose pulps and oxidized NFC’s by TEMPO-mediated reaction (NFCT’s). The nanocellulose suspension and gels are characterized by FTIR at ATR mode, TGA, XRD, TEM, SEM, X-ray computed microtomography (micro-CT) and DMTA. The addition of CNC’s, NFC’s, CNCT’s or NFCT’s in the microstructure of gels increases their dimensional stabilities. The best results are obtained when CNCT’s and NFCT’s are added. The mechanical properties and dimensional stability of \u003cem\u003eAlg/Ch\u003c/em\u003e semi-IPN’s increase after controlled thermal post-treatment. The heating during thermal post-treatment boosts the physicochemical interactions in the microstructures of semi-IPN’s. The biological assays show biocompatibility of fibroblast cells on the substrates, and differentiation and proliferation up seven days. The optimized mechanical properties, dimensional stability and biocompatibility of the gels studied in this work are important parameters for potential biomedical applications of these biomaterials.\u0026nbsp;\u003c/p\u003e","manuscriptTitle":"Three-dimensional Hydrogels of Alginate/chitosan Semi-interpenetrating Polymer Networks and Nanocelluloses","msid":"","msnumber":"","nonDraftVersions":[{"code":1,"date":"2021-10-18 15:18:19","doi":"10.21203/rs.3.rs-706130/v1","editorialEvents":[{"type":"communityComments","content":0}],"status":"published","journal":{"display":true,"email":"[email protected]","identity":"researchsquare","isNatureJournal":false,"hasQc":true,"allowDirectSubmit":true,"externalIdentity":"","sideBox":"","snPcode":"","submissionUrl":"/submission","title":"Research Square","twitterHandle":"researchsquare","acdcEnabled":true,"dfaEnabled":false,"editorialSystem":"","reportingPortfolio":"","inReviewEnabled":false,"inReviewRevisionsEnabled":true}}],"origin":"","ownerIdentity":"b89fab4e-c892-4bad-8bdc-ac9f99a209b8","owner":[],"postedDate":"October 18th, 2021","published":true,"recentEditorialEvents":[],"rejectedJournal":[],"revision":"","amendment":"","status":"posted","subjectAreas":[{"id":7925581,"name":"Cellular \u0026 Molecular Neuroscience"}],"tags":[],"updatedAt":"2021-11-07T20:39:30+00:00","versionOfRecord":[],"versionCreatedAt":"2021-10-18 15:18:19","video":"","vorDoi":"","vorDoiUrl":"","workflowStages":[]},"version":"v1","identity":"rs-706130","journalConfig":"researchsquare"},"__N_SSP":true},"page":"/article/[identity]/[[...version]]","query":{"redirect":"/article/rs-706130","identity":"rs-706130","version":["v1"]},"buildId":"7rjqhiLT3MXkJMwkYKINL","isFallback":false,"isExperimentalCompile":false,"dynamicIds":[84888],"gssp":true,"scriptLoader":[]}

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