ELX is an orally administered non-peptidic GnRH antagonist used to treat endometriosis pain [ 8 , 9 ]. The fluorometric technique, as is well known, is a highly selective, quick, and sensitive technique widely employed for pharmaceutical substances [ 15 , 16 ]. After excitation at 370 nm, the fluorescence of synthesized B@CQDs was seen at 435 nm. After the addition of varying concentrations of ELX to B@CQDs, enhancement of the fluorescence was observed Fig. 1 b.
The enhancing reaction mechanism of ELX with B@CQDs, which is based on hydrogen bonding, energy/electron transfer, and electrostatic contact, resulted in an increase in the quantum dots' fluorescence. Because of the hydrogen bonding and electron-donor–acceptor complex between B@CQDs and ELX, as well as the abundance of carboxyl, hydroxyl, and trivalent boron moieties, the B@CQDs' fluorescence was enhanced by combining with ELX. The carboxyl or hydroxyl groups of B@CQDs and the fluorine of ELX form active and strong nearby hydrogen bonds [ 20 , 21 ].
Furthermore, the electron-accepting representative of trivalent boron stabilized by the carbon skeleton of B@CQDs and the electron-donating character of ELX, which may promote the conjugation of C = C bonds [ 22 ], as well as the merging effect of hydrogen bonding and electron-donor–acceptor complex effect, led to an increase in the initiation of massive chromophores and fluorophores [ 22 ].
Varying morphological characters of the quantum dots were studied, firstly TEM image was carried out to study their particle size. The size of the quantum dots was found to be 3 nm and conformed with DLS spectrum Fig. 2 a. Fig. 2 Morphological characters of B@CQDs, a TEM image with DLS for B@QDs, b FTIR, c EDX characterization of B@QDs and d PXRD for B@CQDs
Morphological characters of B@CQDs, a TEM image with DLS for B@QDs, b FTIR, c EDX characterization of B@QDs and d PXRD for B@CQDs
The FTIR for B@CQDs, the bands that emerge at 3412, 1690, 1622, 1095, and 1236 cm −1 correspond to (OH), (C = O), (C = C), (C O C), and (CO) respectively [ 14 , 23 ].
However, B@CQDs FTIR provides characteristic peaks at 2952, 1425, 1031, and 796 cm −1 are indicated to (B‒OH), (B‒C), (B‒O), and (B‒O‒B) respectively, which confirms the doping of boron in the carbonaceous structure of the synthesized B@CQDs compared to the undoped CQDs [ 24 ] Fig. 2 b.
EDX spectrum provides three characteristic peaks for B@CQDs refer to B 20.13% at 0.18 keV, C 49.22% at 0.24 keV and O 30.65% at 0.51 keV as shown in Fig. 2 c.
To characterize B@CQDs further, PXRD (Fig. 2 d) was employed strong peak at 2θ = 23.9, which corresponds to the graphite phase (002) plane [ 25 ] and diffraction peaks at 11.4 (001) and 42.3 (100) for B@CQDs compared with undoped carbon dots Additional file 1 : Fig. S1.
As shown in Fig. 3 a, XPS was used for elemental analysis. The B 1 s high-resolution spectra revealed two peaks with binding energies of 192.09and 192.97 eV, which correspond to B–C and B–O, respectively (Fig. 3 b). Carboxylic groups are present at 288.20, as well as C–O/C–N and C = C bonds at 285.27 and 284.47, respectively, in the high-resolution C 1 s image (Fig. 3 c). The spectrum of N 1 s exhibits two distinct peaks at 399.20 and 400.10 eV, indicating two components for N–C and N–H [ 26 , 27 ] Fig. 3 d. Fig. 3 XPS images for B@CQDs, a elemental image for B@CQDs, b B1s image, c) C 1 s image and d) N 1 s image for B@CQDs
XPS images for B@CQDs, a elemental image for B@CQDs, b B1s image, c) C 1 s image and d) N 1 s image for B@CQDs
The quantum yield of B@CQDs was determined using the single point method [ 12 , 17 ]: \documentclass[12pt]{minimal}
\usepackage{amsmath}
\usepackage{wasysym}
\usepackage{amsfonts}
\usepackage{amssymb}
\usepackage{amsbsy}
\usepackage{mathrsfs}
\usepackage{upgreek}
\setlength{\oddsidemargin}{-69pt}
\begin{document}$${{\varvec{Q}}}_{{\varvec{X}}}={{\varvec{Q}}}_{{\varvec{s}}{\varvec{t}}}.\boldsymbol{ }\frac{{{\varvec{I}}}_{{\varvec{X}}}}{{{\varvec{I}}}_{{\varvec{s}}{\varvec{t}}}}.\frac{{{\varvec{A}}}_{{\varvec{s}}{\varvec{t}}}}{{{\varvec{A}}}_{{\varvec{X}}}}.\frac{{{\varvec{\eta}}}^{2}}{{{\varvec{\eta}}}^{2}}$$\end{document} Q X = Q s t . I X I s t . A s t A X . η 2 η 2 where, Q st is quantum yield for standard solution (quinine sulphate), (I) is the integrated fluorescence intensity, \documentclass[12pt]{minimal}
\usepackage{amsmath}
\usepackage{wasysym}
\usepackage{amsfonts}
\usepackage{amssymb}
\usepackage{amsbsy}
\usepackage{mathrsfs}
\usepackage{upgreek}
\setlength{\oddsidemargin}{-69pt}
\begin{document}$${\varvec{\eta}}$$\end{document} η is the refractive index of the water and A is absorption. B@CQDs have quantum yield 38.44%.Spectrophotometric and spectrofluorimetric equipment were used to analyses the quantum dots' spectrum properties. Two peaks at 209 and 312 nm seen in Fig. 4 a. These peaks were referred to as the π-π* electronic transition of C = C and the n-π* electronic transition of C = O which are related to the synthesized
[email protected], B@CQDs provides an emission peak at 435 nm (excitation at 370 nm), which indicates carbon optical properties. Fluorescence (FL) spectra of B@CQ-dots were studied with change wavelength excitation from 340 to 430 nm. Increasing excitation led to a red shift in the emission of B@CQ dots followed by a decrease in RFI, that validates carbon dots excitation-dependent emission [ 14 ] Fig. 4 b. Fig. 4 a Spectral analysis of B@CQDs, b Excitation dependent emission curve
a Spectral analysis of B@CQDs, b Excitation dependent emission curve
Under various settings, the reaction between ELX and B@CQDs was optimized. The influence of pH on fluorescence enhancement was investigated in the range of 5.5 to 7.3, the highest fluorescence intensity was achieved using pH 6.4 ± 0.3 (Additional file 1 : Fig. S2a) with a buffer concentration equal to 0.02 M Additional file 1 : Fig. S2b.
Furthermore, the effect of B@CQD concentration was investigated from 0.005 to 0.035 mg mL −1 , the greatest fluorescence obtained using 0.012 mg mL −1 and not affected by increasing B@CQD volume. As a result, the optimum concentration of B@CDs was determined to be 0.015 mg mL −1 (0.5 mL) Additional file 1 : Fig. S2c.
At varied time intervals spanning from 0 to 20 min as in Additional file 1 : Fig. S2d, the efficiency of fluorescence amplification in the presence of ELX was studied. The maximum fluorescence increase of B@CQDs was achieved after 8 min, so 10 min was used as the optimum reaction time.
The hydrogen bonding and electron-donor–acceptor complex between B@CQDs and ELX could explain the fluorescence enhancement technique. Based on the two highlighted, active, and strong neighboring hydrogen bonds between the hydroxyl/carboxyl of B@CQDs and fluorine atoms of ELX [ 14 , 17 , 21 ], the existence of carboxyl, hydroxyl, and trivalent boron groups offers viability to conjugate with the referenced analyte. Strong intermolecular hydrogen bonds can form a center that connects two molecules that are next to each other. The types of interactions (OH.F and/or OH.N) and molecular symmetry are connected to the hydrogen bond strength and amount of resonance within the hydrogen-bonded system in all circumstances [ 14 , 21 ].
The reaction was validated in accordance with ICH and FDA guidelines [ 28 , 29 ]. Plotting different concentrations of ELX with B@CQDs against RFI was used to investigate the reaction's sensitivity. The calibrated range was found to be 4 – 100 ng mL −1 with the regression equation y = 10.0493x + 1585 as shown in Table 1 , the lower limit of quantitation (LOQ) was found to be 1.74 ng mL −1 and the lower limit of detection (LOD) was determined to be 0.57 ng mL −1 . The results show that the proposed approach has high sensitivity. Table 1 Analytical parameters for the proposed method for determination of ELX Parameter ELX λ ex (nm) 370 λ em (nm) 435 Concentration range (ng mL −1 ) 4–100 Determination coefficient (r 2 ) 0.9992 Slope 10.04 Intercept 1585 SD the intercept (Sa) 1.75 LOD (ng mL −1 ) 0.57 LOQ (ng mL −1 ) 1.74 LOD Limit of detection, LOQ Limit of quantitation
Analytical parameters for the proposed method for determination of ELX
LOD Limit of detection, LOQ Limit of quantitation
The accuracy of B@CQDs with ELX was investigated using five concentrations (10, 20, 50, 90, and 100 ng mL. −1 ) within the calibration range, the percent of recoveries were ranged from 99.86 to 100.65 and RSD values were ranged from 0.21 to 1.00. The results show that the proposed approach is high accurate. Table 2 Table 2 Accuracy and precision results of the proposed method for determination of ELX Sample number Taken (ng mL −1 ) Found (ng mL −1 ) % Recovery* ± RSD 1 10 10.01 100.10 ± 0.50 2 20.0 20.05 100.25 ± 1.00 3 50.0 50.12 100.24 ± 0.76 4 90.0 89.88 99.86 ± 0.55 5 100.0 100.65 100.65 ± 0.21 Intra-day precision 10 10.10 101.00 ± 0.31 50 50.06 100.12 ± 0.40 100 100.22 100.22 ± 0.72 Inter-day precision 10 10.02 100.20 ± 0.82 50 49.90 99.80 ± 0.33 100 99.69 99.69 ± 0.80 * Average of three determinations. RSD Relative standard deviation
Accuracy and precision results of the proposed method for determination of ELX
* Average of three determinations. RSD Relative standard deviation
While, the intra-day precision of the presented method was tested at three concentration levels (10, 50 and 100 ng mL −1 ) at three successive measurements. While the inter-day precision was investigated using three concentrations measured as three replicates for three consecutive days. The results obtained refer to excellent repeatability Table 2 .
In order to evaluate the interference from plasma, the effect of matrix solution was established with ELX using three levels of quality control samples of the investigated drug. The percent of recovery ± RSD ranged from 94.05 ± 0.99 to 97.90 ± 1.44. The results indicated the absence of interference from the matrix with ELX under different conditions and referred to the high selectivity of the proposed method as shown in Additional file 1 : Table S1.
Incurred sample reanalysis (ISR) is a very important parameter to evaluate accuracy and precision of incurred samples in bio-analytical validations using FDA guidelines. In the presented study, the percentage difference between the initial and incurred samples was found to be 3.40%. According to FDA guidelines, the results of incurred samples met the accepted criteria as shown in Additional file 1 : Table S2.
The selectivity of the proposed method was studied using external materials as (sucrose, glycine, urea, Ca 2+ , Cu 2+ and cystine) and different analgesic as tenoxicam, diclofenac. No interference of the external materials was observed as in Additional file 1 : Fig S3. It was observed that non-significant enhancement was observed with sucrose, glycine, and urea. However quenching effect was observed with Ca 2+ , Cu 2+ , tenoxicam and diclofenac due to the absence of fluorine atom that forming hydrogen bonding with B@CQDs [ 14 , 21 ]. The results indicate to the high selectivity of this work.
The method was successfully applied in spiked, real human plasma and its formulation. The percent of recovery in spiked human plasma was observed to be 98.80 ± 0.92 as in Table 3 . Table 3 Application of the spectrofluorimetric method for determination of ELX in spiked human plasma Added conc. (ng mL −1 ) Found (ng mL −1 ) % Recovery* ± RSD 5 4.89 97.80 ± 0.81 10 9.88 98.80 ± 0.92 20 19.42 97.10 ± 0.84 50 48.08 96.16 ± 1.21 90 88.03 97.82 ± 1.64 100 97.10 97.10 ± 0.79 * Average of six determinations
Application of the spectrofluorimetric method for determination of ELX in spiked human plasma
* Average of six determinations
Determination of ELX in real human plasma (pharmacokinetic study) was carried out about its therapeutic level, peak plasma level (C max) of cited drug was found to be 570 ± 5.32 ng mL −1 after administration of ELX 150 mg/ tablet as single oral dose which agrees with other reported one [ 30 ]. All the parameters of PK were recorded in Table 4 . Table 4 Pharmacokinetic study of ELX using the proposed method Time (h) Oral (ng mL −1 ) Parameters Results 0.5 320 C max (ng mL −1 ) 570 ± 5.32 1.0 570 T max (h) 1.0 ± 0.10 3.0 500 t ½ (h) 6.5 ± 1.01 5.0 400 AUC (ng·h mL −1 ) 1290 ± 30.33 6 280 9 200 10 100 15 70 20 50 25 42 30 20
Pharmacokinetic study of ELX using the proposed method
Besides, B@CQDs was applied for determination of ELX in pharmaceutical dosage form, and the obtained results were found to be satisfactory with a good recovery (99.70 ± 0.69) with t value (1.40) and F value (2.86) compared with other reported method [ 10 ]. The evaluation of content uniformity test for ELX was performed by applying the general procedure according to USP guidelines [ 17 , 18 ]. The content of individual dosage form was analyzed then percentage recoveries were calculated individually. The percent of recovery was recorded at Table 5 . Table 5 Content uniformity for ELX (Orilissa® tablets) using the proposed method Dosage form No % labeled claim Orilissa® tablets (200 mg/tab) 1 99.11 2 100.45 3 98.99 4 99.11 5 100.22 6 98.88 7 100.11 8 99.60 9 99.93 10 100.02 Mean 99.64 SD 0.57 RSD 0.57 Acceptance value (AV)* 1.4 Max. allowed AV (L1)* 15 * Acceptance value = 2.4 × SD
Content uniformity for ELX (Orilissa® tablets) using the proposed method
* Acceptance value = 2.4 × SD
Comparing the results in our work with other reported as in Table 6 . It was found B@CQDs can serve as a probe for the detection of ELX in a low concentration with higher sensitivity and reliability than other reported methods. Table 6 Comparison reported methods for elagolix with presented method Method LOD ng mL −1 LOQ ng mL −1 Refs. Fluorimetry 0.57 1.74 Presented study HPLC 200 500 [ 9 ] Fluorimetry 16.50 50.0 [ 10 ] UPLC-MS/MS 200 500 [ 11 ]
Comparison reported methods for elagolix with presented method