Section 6
The anticancer activities of flavokawains have been extensively investigated in in vitro cellular systems and in vivo tumor models. The present review systematically evaluates the accumulating preclinical evidence, highlighting their multi-targeted anti-tumor effects through modulation of oncogenic signaling pathways, induction of apoptosis, suppression of metastasis, and remodeling of the TME. A timeline highlighting key discoveries and pharmacological advancements of flavokawains is presented in Figure 3 . A comprehensive summary of the therapeutic effects of flavokawains across various cancer types is provided in Table 2 .
Lymphomas are a heterogeneous group of lymphoproliferative cancers that arise from B cells, T cells, or natural killer cells, and are primarily classified as Hodgkin’s lymphoma (HL) or non-Hodgkin’s lymphoma (NHL) [ 96 , 97 ]. FKB has been reported to exert prominent anti-tumor activity against B-cell lymphoma by interfering with the phosphoinositide 3-kinase (PI3K)/protein kinase B (Akt) signaling pathway [ 46 ]. In vitro studies revealed that this compound reduced Akt phosphorylation at Ser 473 , inhibited cell viability in a dose-dependent manner, and triggered apoptosis via downregulation of B-cell lymphoma-extra large (Bcl-xL), activation of caspase-3, and cleavage of poly(ADP-ribose) polymerase (PARP). Also, ABT-199, a selective B-cell lymphoma 2 inhibitor, exhibits synergistic anticancer activity in combination with FKB. The strongest synergy was observed in SUDHL-4 cells, with a combination index below 0.55, compared with Raji and Jeko-1 cells. This combination led to a concentration-dependent reduction in cell viability in B-lymphoma cells. Further, in vivo efficacy was confirmed in an SUDHL-4-derived xenograft model in nude mice, where FKB treatment markedly reduced tumor weight and decreased the number of Ki-67-positive cells [ 46 ]. The broad spectrum of anticancer activities of flavokawains across different cancer types is depicted in Figure 4 .
Bladder cancer is a highly aggressive neoplasm arising from the urothelium covering the inner lining of the bladder and ranks as the ninth most commonly diagnosed cancer worldwide [ 5 , 98 ]. FKA has attracted interest as a candidate inhibitor of protein arginine methyltransferase 5 (PRMT5), an epigenetic regulatory enzyme linked to poor clinical prognosis in bladder cancer [ 55 ]. Liu et al. demonstrated that FKA selectively suppressed the proliferation of PRMT5-expressing bladder cancer cells and promoted apoptosis, accompanied by a marked decrease in the methylation of histone residues H2AR3 and H4R3. In UMUC3 cells derived xenograft model, treatment with FKA led to a significant reduction in tumor size and decreased methylation levels at H2AR3 and H4R3. Importantly, when compared to clinically investigated PRMT5 inhibitors such as EPZ015666 and GSK3326595, FKA exhibited superior anti-tumor activity. Combinatorial treatment with FKA and standard chemotherapeutic agents, including cetuximab, gemcitabine, and cisplatin, resulted in enhanced therapeutic efficacy, suggesting a potential synergistic interaction [ 55 ]. A separate study has reported that, in a UPII-SV40T transgenic mouse model of bladder cancer, dietary administration of FKA at a dose of 6 g/kg incorporated into the American Institute of Nutrition 93 maintenance diet (AIN-93M) was associated with prolonged overall survival of mice [ 56 ]. Additionally, FKA administration reduced tumor-associated bladder weight. Histopathological analysis revealed that this compound attenuated the progression from carcinoma in situ to more aggressive high-grade papillary and muscle-invasive urothelial carcinoma, suggesting a delay in malignant transformation. Immunohistochemical analysis revealed decreased Ki-67 expression, elevated p27 levels, and increased terminal deoxynucleotidyl transferase dUTP nick end labeling (TUNEL)-positive cells. This pro-apoptotic effect was accompanied by downregulation of anti-apoptotic proteins, including Bcl-2, X-linked inhibitor of apoptosis protein (XIAP), and survivin, and upregulation of the death receptor (DR5) [ 56 ]. Another study by Tang Y et al. showed that FKA exhibited differential cell-cycle regulatory effects in bladder cancer cells depending on p53 status [ 57 ]. In RT4 cells expressing wild-type p53, FKA triggered G1 phase arrest through upregulation of the cyclin-dependent kinase (CDK) inhibitors p21/WAF1 and p27/Kip1, alongside suppression of S-phase Kinase-associated Protein 2 (SKP2) and CDK2 activity. In T24 cells harboring mutant p53, FKA instead induced G2/M phase arrest accompanied by a time-dependent increase in CDK1 activity, along with a decrease in phosphorylation of Cdc25C at Ser 216 . Moreover, the G2/M checkpoint regulators Myt1 and Wee1 were also downregulated. Oral administration of FKA at 50 mg/kg body weight significantly suppressed tumor growth in RT4-induced xenograft in nude mice, leading to an approximately 64% reduction in tumor volume [ 57 ]. Furthermore, FKA reduced cell proliferation in the human bladder cancer cell lines RT4, T24, and EJ by 90–95% [ 45 ]. This growth inhibition was accompanied by the induction of apoptosis via activation of caspase-3 and caspase-9 and PARP cleavage, indicating involvement of the intrinsic mitochondrial apoptotic pathway. The anti-apoptotic proteins XIAP and survivin were also downregulated following FKA treatment. Oral administration of FKA at a dosage of 50 mg/kg body weight in nude mice bearing EJ cell-derived xenografts significantly suppressed tumor growth, resulting in a 57% reduction in tumor volume [ 45 ]. Interestingly, the combination of FKA with yangonin exhibited a synergistic inhibitory effect on bladder cancer cell proliferation, resulting in a 36–52% greater reduction in cell growth than treatment with either agent alone [ 58 ].
Taken together, FKA exhibits significant anti-bladder cancer activity through multiple mechanisms, including inhibition of PRMT5-mediated epigenetic regulation, induction of apoptosis, and modulation of cell-cycle progression. These effects translate into reduced tumor growth, delayed disease progression, and prolonged survival in both xenograft and transgenic bladder cancer models. Moreover, its synergistic effects with conventional chemotherapeutic agents highlight its potential as a promising therapeutic candidate for bladder cancer. However, further safety evaluations and clinical studies are required to validate its efficacy and translational applicability.
Bone cancer malignancies are severe, life-threatening conditions that particularly affect children and adolescents worldwide [ 99 ]. Flavokawains have gained significant attention for their distinct anticancer properties in the management of various bone-related malignancies. In a pivotal study investigating the therapeutic effect of FKA on osteosarcoma, treatment with FKA resulted in a marked inhibition of cell proliferation [ 59 ]. Moreover, FKA significantly suppressed the invasive capabilities of these cells in a concentration-dependent manner. Molecular analyses revealed that FKA downregulated S-phase kinase-associated protein 2 (SKP2) at both transcript and protein levels, along with an increased accumulation of p21 and cleaved caspase-3. FKA also induced G2/M phase arrest and promoted PARP cleavage. In an in vivo model, oral administration of FKA led to a notable reduction in SKP2 expression in lung tissues and a concomitant decrease in p27 expression in metastatic lung nodules, suggesting attenuation of metastatic progression. Additionally, there was a notable increase in TUNEL-positive cells, indicating enhanced apoptosis in metastatic sites [ 59 ]. Wang et al. conducted a study using a synovial sarcoma cell model; FKA produced concentration-dependent inhibition of both cellular proliferation and invasive capacity, induced G2/M phase arrest, and triggered apoptosis, as evidenced by the cleavage of PARP and caspase-7. Mechanistic investigations revealed that FKA downregulated SKP2 expression in a dose-dependent manner, suggesting a role in modulating cell-cycle progression and apoptotic sensitivity. Oral administration of FKA at 600 mg/kg, in severe combined immunodeficiency (SCID) mice bearing HSSY-II-induced synovial sarcoma xenografts, significantly reduced tumor volume. Notably, when combined with doxorubicin, FKA exhibited a strong synergistic effect, markedly enhancing cytotoxicity and further reducing synovial sarcoma cell viability beyond the effects observed with either agent alone [ 60 ]. Further, FKA dose-dependently inhibited cell proliferation and colony formation in synovial sarcoma cell lines, with induction of apoptosis confirmed by elevated enzymatic activities of caspases-3, -7, -8, and -9, indicating activation of both extrinsic and intrinsic apoptotic pathways. Pro-apoptotic regulators such as DR5, Bim, and Puma were elevated, while survivin expression was reduced. A shift in the balance of Bcl-2 family proteins was also observed, with an upregulation of BCL2-associated X protein (Bax) and a downregulation of Bcl-2, further contributing to the pro-apoptotic effect of FKA [ 61 ].
Collectively, these findings demonstrate that FKA possesses significant anti-tumor activity against osteosarcoma and synovial sarcoma by inhibiting cell proliferation and invasion, inducing G2/M cell-cycle arrest, promoting apoptosis, and suppressing SKP2-mediated oncogenic signaling. The observed reduction in tumor growth and metastasis, along with its synergistic effects with doxorubicin, highlights the potential of FKA as a promising therapeutic candidate for bone-related malignancies. However, further clinical studies are required to establish its safety and efficacy in humans.
Breast cancer is a highly aggressive malignancy and ranks as the second most frequently diagnosed cancer worldwide, with strong propensity to metastasize to distant organs including bone, liver, lung and brain [ 5 , 100 , 101 ]. Advancements in synthetic derivatives of FKB have unveiled their potency in breast cancer treatments. For instance, a series of twenty-three FKB derivatives (compounds 1 – 23 ) was assessed for anticancer activity in breast cancer cell lines. Among these, compounds FKB-13, FKB-15, and FKB-16 demonstrated markedly enhanced cytotoxic effects relative to the other compounds in the series, warranting further development [ 62 ]. In human epidermal growth factor receptor 2 (HER2)-overexpressing breast cancer, FKA has demonstrated an inhibitory effect on cell proliferation, significantly suppressing clonogenic capacity by up to 80% and inducing G2/M phase arrest [ 63 ]. Mechanistically, FKA activated Cdc2 kinase activity while concurrently decreasing its phosphorylation at Tyr 15 , which correlated with reduced expression of its upstream inhibitory regulators, Wee1 and Myt1. FKA also promoted apoptosis in these cells by upregulating Bim and Bax and suppressing survivin, XIAP, Bcl-2, and Bcl-xL. Notably, co-treatment with Herceptin yielded a synergistic reduction in cell viability, highlighting the potential of FKA as an effective adjunct in targeting HER2-driven breast cancer [ 63 ]. Further supporting these findings, FLS, a synthetic derivative of flavokawain, exhibited significant antiproliferative effects in breast cancer cells by triggering apoptosis and reducing cell viability, and was associated with G2/M cell-cycle arrest and a progressive increase in the expression of p53 and Bax, alongside decreased Bcl-2 [ 64 ]. Additionally, FLS treatment led to elevated caspase-9 activity and enhanced time-dependent cytosolic release of cytochrome c, implicating activation of the intrinsic mitochondrial apoptotic pathway in its mechanism of action [ 64 ]. Similarly, a synthesized form of FKB also suppressed breast cancer cell proliferation in a dose-dependent manner, accompanied by induction of apoptosis and G2/M phase arrest of the cell cycle. Under ex vivo conditions, FKB significantly reduced both the invasive and migratory capabilities of breast cancer cells in a concentration-dependent manner and impaired angiogenic activity, further supporting its potential as a multi-targeted therapeutic agent against breast cancer progression [ 65 ]. Another study revealed that FKA demonstrated a dose-dependent inhibition of breast cancer cell proliferation, achieving approximately 50% growth suppression at concentrations below 50 µM [ 21 ]. The compound exhibited greater potency in MDA-MB-231 cells (IC 50 = 17.49 µM) than in MCF-7 cells (IC 50 = 25.13 µM). Mechanistic investigations revealed that FKA induced G2/M arrest, promoted apoptosis through activation of caspase-8 and -9, upregulation of pro-apoptotic markers such as Bax and cytochrome c, and downregulation of the mitotic regulators Polo-like kinase 1 (PLK1) and Forkhead box protein M1 (FOXM1). In functional assays, FKA reduced the invasive and migratory behavior of cancer cells in a concentration-dependent manner. Additionally, its anti-angiogenic properties were confirmed using the rat aortic ring model, in which FKA effectively inhibited vessel outgrowth from aortic fragments, supporting its potential as a multi-targeted agent in breast cancer therapy [ 21 ].
Flavokawains have demonstrated broad-spectrum preclinical anti-tumor activity against breast cancer through diverse mechanisms, including inhibition of cell proliferation, induction of apoptosis via intrinsic and extrinsic pathways, G2/M cell-cycle arrest, suppression of invasion and migration, and inhibition of angiogenesis. The synergistic efficacy of FKA with Herceptin in HER2-overexpressing breast cancer, along with the enhanced cytotoxic potential of synthetic derivatives such as FKB-13, FKB-15, FKB-16, and FLS, further supports the translational promise of this class of compounds. Nonetheless, advancement toward clinical application necessitates comprehensive in vivo safety and efficacy validation, as well as well-structured clinical trials to firmly establish the therapeutic utility of flavokawains in breast cancer management.
Cervical cancer is a leading female malignancy that contributes significantly to the global health burden, ranking as the fourth most commonly diagnosed cancer among females worldwide [ 5 , 102 ]. An investigation into the effects of FKB on HeLa cells revealed cytotoxic activity, with an IC 50 of 17.5 µM. FKB treatment also resulted in G2/M phase arrest and induced apoptosis, indicating its potential to disrupt cellular proliferation and promote programmed cell death [ 66 ]. Furthermore, a notable upregulation of intracellular antioxidant markers, including superoxide dismutase (SOD) and glutathione (GSH), was observed in FKB-treated cells, suggesting enhanced antioxidant defense. When combined with hydrogen peroxide (H 2 O 2 ), FKB markedly attenuated reactive oxygen species (ROS) levels, implying its role in modulating oxidative stress within the cellular environment [ 66 ]. FKB has exhibited promising preclinical anticancer activity in cervical cancer, as evidenced by its cytotoxic effects, induction of G2/M arrest and apoptosis, and modulation of the cellular oxidative stress environment through upregulation of the antioxidant markers SOD and GSH.
These findings show the multifaceted mechanistic potential of FKB as a therapeutic candidate in cervical cancer management. However, the current evidence remains limited to a single in vitro study, and extensive preclinical investigations encompassing in vivo models, followed by rigorous clinical evaluation, are imperative to comprehensively establish its therapeutic efficacy in this malignancy.
Cholangiocarcinoma is a highly aggressive malignancy arising from the epithelial cells of the bile ducts or liver [ 103 , 104 ]. To improve therapeutic efficacy, combinatorial approaches are being evaluated. For instance, a combination treatment of FKB and cisplatin produced a synergistic reduction in cell viability and enhanced apoptosis in cholangiocarcinoma cells, with effects increasing in a dose-dependent manner relative to monotherapy with either agent [ 22 ]. Mechanistically, this enhanced apoptotic response was associated with suppression of the Akt signaling pathway. Additionally, co-treatment led to a marked elevation in cleaved PARP expression, indicating increased apoptotic activity compared to single-agent treatments. In vivo co-treatment of FKB with cisplatin or gemcitabine markedly inhibited tumor growth in SNU-478 xenograft-bearing nude mice, further supporting the therapeutic potential of FKB as a sensitizing agent to cisplatin or gemcitabine in cholangiocarcinoma [ 22 ]. Despite these promising preclinical findings, further investigations are required to comprehensively evaluate the therapeutic efficacy of all three flavokawains and to determine their potential integration into standard treatment strategies for cholangiocarcinoma.
Globally, colorectal cancer is diagnosed in approximately two million individuals each year, ranking as the third most commonly diagnosed malignancy and second most common cause of death worldwide, with an estimated 60% rise worldwide by 2030 [ 105 , 106 ]. In a recent study, FKA exhibited concentration-dependent cytotoxicity in human colorectal cancer cells, with a marked reduction in cell viability at elevated concentrations [ 67 ]. Supporting these findings, another study [ 71 ] demonstrated that treatment with FKC significantly reduced cell viability and induced G2/M phase arrest through upregulation of p21 and p27. Apoptotic induction was confirmed by activation of caspases-3, -8, and -9, indicating involvement of both intrinsic and extrinsic pathways. Additionally, FKC suppressed the expression of IAPs, including XIAP, c-IAP1, and c-IAP2. A dose-dependent increase in intracellular ROS levels was accompanied by a decrease in SOD activity, suggesting that oxidative stress may contribute to FKC-induced cell death [ 71 ]. Proteomic profiling following FKC treatment revealed significant modulation of specific proteins. Notably, 17 proteins were upregulated, including molecular chaperones and stress-response proteins such as Hspa8, Hsp70-Hom, Hsp27, Hsp70-1/2, and Hsp86, as well as cytoskeletal and metabolic regulators such as TCP-1-eta, CK-18, Tubulin beta-2 chain, and Gamma actin. Additional upregulated proteins included P4HB, heme oxygenase-1 gene (HMOX1), FKBP4, HR23B, SFPQ, PARK7, GLOD4, and GLRX3, suggesting an activation of stress adaptation and redox homeostasis pathways. Conversely, 18 proteins were downregulated in response to FKC, including proteins involved in cytoskeletal function (MLC-3), metabolism (GAMT, PGAM1), detoxification (GSTO1, COMT), and protein synthesis or degradation pathways (DCK, eIF-5A1, EF-2, eIF-3I, Skp1, CBX3, TCEB1, RanBP1, hTom22, and ATP5H) [ 70 ]. Moreover, in a xenograft model using HCT-116 colorectal cancer cells in nude mice, administration of FKC at doses of 1 mg/kg and 3 mg/kg produced tumor growth inhibition of approximately 18.7–24.0% and 23.4–52.2%, respectively [ 68 ]. Importantly, FKC treatment was well tolerated, without notable changes in body weight or systemic toxicity indicators. Histological analysis of tumor tissues revealed an increase in TUNEL-positive cells and elevated levels of cleaved caspase-3, indicative of apoptosis induction. Concurrently, a reduction in Ki-67-positive cells was observed, reflecting suppression of cell proliferation [ 68 ]. In another study, FKB was assessed for its anticancer potential in human colorectal cancer cells, where it demonstrated a dose-dependent inhibition of cell growth. This antiproliferative effect was accompanied by a notable reduction in proliferating cell nuclear antigen (PCNA) expression. Mechanistic analysis revealed activation of caspase-3, indicating the induction of apoptosis. Additionally, FKB treatment led to cell-cycle arrest at the G2/M phase, suggesting that disruption of cell-cycle progression contributes to its cytotoxic activity [ 69 ]. Furthermore, FKB was shown to exert dose-dependent antiproliferative activity in vitro, significantly suppressing clonogenic capacity and inducing G2/M phase arrest [ 72 ]. Apoptosis was triggered via a mitochondria-dependent intrinsic pathway, leading to caspase activation, as indicated by cytochrome c release. Additionally, FKB treatment upregulated growth arrest and DNA damage-inducible protein 153 (GADD153), elevated intracellular ROS levels, and promoted autophagy, suggesting its multifaceted role in disrupting cancer cell survival [ 72 ]. In a recent study, researchers investigated the anti-CRC effects of FKA using an AOM/DSS-induced colorectal cancer model in mice [ 73 ]. FKA treatment produced a significant, dose-dependent reduction in the number of colorectal tumors and polyp size, as confirmed by hematoxylin and eosin (H&E) histopathology. Employing integrated 16S rRNA sequencing and untargeted metabolomics, the study further elucidated the underlying mechanisms. FKA restored gut microbiota diversity, evidenced by improved α-diversity indices, including Chao1, Shannon, and Faith’s PD. Further, PICRUSt2 functional prediction revealed that FKA significantly downregulated the LPS biosynthesis superpathway, a key pro-inflammatory endotoxin route, thereby attenuating the inflammatory-to-carcinogenic transition in the colon. Untargeted metabolomics of colonic tissue further demonstrated that FKA inversely modulated lipid and arachidonic acid metabolic pathways, thereby suppressing the generation of pro-inflammatory eicosanoids, including prostaglandins and leukotrienes [ 73 ].
Collectively, the available evidence demonstrates that flavokawains, particularly FKA, FKB, and FKC, exhibit potent anticancer activity against colorectal cancer through multiple mechanisms, including inhibition of cell proliferation, induction of G2/M cell-cycle arrest, promotion of apoptosis, generation of oxidative stress, and modulation of key survival pathways. In addition, FKA has shown chemopreventive potential by suppressing colorectal tumor formation, restoring gut microbiota homeostasis, and attenuating inflammation-associated carcinogenic pathways. These findings highlight the promise of flavokawains as potential therapeutic and preventive agents for colorectal cancer; however, further clinical studies are required to validate their safety and efficacy in humans.
The incidence of gastric cancer increases markedly with age, particularly between 55 and 80 years, and is approximately threefold higher in men compared to women [ 107 ]. FKB has been evaluated in multiple gastric cancer cell lines, where it consistently inhibited cell viability and proliferation and induced apoptosis and autophagy [ 49 , 74 , 75 ]. Treatment with FKB promoted cytochrome-c release and activated caspase-9, implicating the mitochondrial apoptotic pathway. Concurrently, increased expression of Fas and FasL, along with activation of caspase-8, indicated engagement of the extrinsic apoptotic pathway [ 74 ]. FKB also induced G2/M phase arrest by reducing Cyclin A, Cyclin B1, CDK1, Cdc25C, and Cdc2 [ 49 , 75 ]. Interestingly, treatment reduced the levels of both Bcl-2 and Bax [ 49 ]. In addition, FKB modulated oncogenic signaling cascades, including PI3K/Akt/mammalian target of rapamycin (mTOR), ROS-JNK, and TGF-β [ 49 , 74 , 75 ]. In vivo, administration of FKB significantly reduced tumor volume and significantly upregulated TSPAN12, TGF-β1, and SMAD4 proteins in AGS- and SGC-7901-derived xenograft models [ 49 , 74 , 75 ]. Furthermore, the combination of FKB with doxorubicin enhanced cytotoxicity and autophagy in gastric cancer cells in vitro and produced marked inhibition of tumor growth in vivo. Notably, the synergistic effect between FKB and doxorubicin was further confirmed by a combination index < 1 [ 74 ].
These findings warrant further investigation to elucidate the effects of FKB on key processes, including cell invasion, migration, and metastasis, in gastric cancer cells. In addition, evaluating its efficacy across a broader panel of gastric cancer cell lines is necessary to validate its clinical potential. Moreover, the anticancer effects of related flavokawains, including FKA and FKC, should also be explored in gastric cancer models.
Oral squamous cell carcinoma (OSCC) is the predominant form of oral cancer and is mostly diagnosed at an advanced stage [ 108 , 109 ]. At relatively low concentrations of 10 μg/mL for FKA and 2.5 μg/mL for FKB, both compounds significantly suppressed cell growth in OSCC cells. In addition to their antiproliferative effects, both flavokawains markedly diminished the migratory and invasive potential of OSCC cells [ 76 ]. In addition, FKB inhibited the growth of oral carcinoma cells by inducing apoptosis and causing G2/M cell-cycle arrest [ 77 ]. This was associated with reduced expression of cyclin A, cyclin B, Cdc2, and Cdc25C. FKB also promoted the proteolytic activation of procaspase-9 and -3, decreased Bcl-2 levels, and increased Bax expression. Additionally, FKB suppressed PI3K/Akt phosphorylation and p38 MAPK signaling, while inducing a time-dependent upregulation of JNK1/2 and extracellular signal-regulated kinase (ERK1/2), indicating its involvement in both apoptotic and stress-related signaling pathways [ 77 ]. Further, under in vitro conditions, FKB inhibited cell proliferation by approximately 85% in oral adenoid cystic carcinoma cells, primarily by inducing G2/M arrest. Additionally, FKB triggered apoptosis and dose-dependently upregulated mRNA expression of the pro-apoptotic markers Bim, Bak, and Bax, as well as Bcl-2, suggesting involvement of mitochondrial apoptotic pathways [ 78 ].
Over recent decades, the incidence of nasopharyngeal carcinoma, a highly aggressive malignancy of the head and neck, has shown a marked increase [ 110 ]. Treatment with FKC notably inhibited cell proliferation and triggered apoptosis in nasopharyngeal carcinoma cells, primarily by targeting heat shock protein 90 beta family member 1 (HSP90B1) and reducing the expression of the angiogenic factors angiopoietin-1 (Ang-1) and vascular endothelial growth factor (VEGF) [ 79 ]. Additionally, FKC suppressed the phosphorylation of key components within the epidermal growth factor receptor EGFR/PI3K/Akt/mTOR signaling cascade, contributing to its anti-tumor effects. In vivo, FKC administration led to a substantial decrease in both tumor volume and weight. This was associated with downregulation of HSP90B1, glucose transporter 1 (GLUT1), hexokinase 2 (HK2), Ang-1, and VEGF, further supporting the inhibition of the EGFR/PI3K/Akt/mTOR axis and related metabolic and angiogenic processes [ 79 ].
Collectively, these studies demonstrate that flavokawains exert potent anti-tumor effects against head and neck malignancies, including oral squamous cell carcinoma, oral adenoid cystic carcinoma, and nasopharyngeal carcinoma. Their anticancer activity is mediated through the suppression of cell proliferation, migration, invasion, angiogenesis, and tumor growth, alongside the induction of apoptosis and cell-cycle arrest. Mechanistically, flavokawains modulate multiple oncogenic signaling pathways, including PI3K/Akt, MAPK, EGFR/PI3K/Akt/mTOR, and mitochondrial apoptotic pathways, highlighting their potential as promising multi-target therapeutic agents for the management of head and neck cancers.
Liver cancer accounted for approximately 905,677 new cases and 830,180 fatalities globally, with both incidence and mortality rates significantly higher in males compared to females [ 111 ]. The effect of flavokawains was investigated in liver cancer. For example, FKA treatment suppressed the viability, invasive capacity, migration, and vasculogenic mimicry of hepatocellular carcinoma (HCC) cells, accompanied by reduced expression of VE-cadherin, vimentin, and Snail1, and increased E-cadherin levels, indicative of epithelial–mesenchymal transition (EMT) inhibition [ 29 ]. This effect was associated with decreased phosphorylation of PI3K and Akt, and with downregulation of key EMT-associated transcription factors, including HIF-1α, NF-κB, and Twist1. In a HepG2 xenograft model, FKA administration suppressed tumor growth and metastasis, elevated E-cadherin expression, and suppressed Twist1, VE-cadherin, vimentin, and p-Akt levels, suggesting that FKA hinders EMT progression by targeting the PI3K/Akt/Twist1 signaling axis [ 29 ]. Another study compared the cytotoxicity of FKA and FKB in HepG2 cells and found that FKA exhibited less cytotoxicity than FKB [ 50 ]. Both compounds induced a concentration-dependent increase in nuclear factor erythroid 2-related factor 2 (Nrf2) and HSF1 expression, as well as elevated mRNA levels of antioxidant and stress-response genes, including HMOX1 and GCLC. Additionally, dose-dependent upregulation of HSPA1A and DNAJA4 was observed. Protein levels of HO-1 and Hsp70-1 were also increased following treatment with FKA and FKB. However, both compounds were shown to enhance intracellular GSH levels and confer protection against H 2 O 2 -induced oxidative cell death, suggesting a role in cellular defense through activation of antioxidant and heat shock responses in these cells [ 50 ]. Therefore, more studies are required to validate these findings as both compounds induce resistance in cancer cells, which is not good for cancer treatment. Expanding the investigation to FKC, a recent study reported that treatment of liver cancer cells with FKC resulted in inhibition of cell proliferation and clonogenic capacity, along with induction of apoptosis, as evidenced by decreased Bcl-2 and elevated Bax protein levels [ 48 ]. FKC also promoted DNA damage, indicated by increased γ-H2AX expression. Additionally, it impaired cell adhesion and significantly suppressed migration, which correlated with reduced phosphorylation of focal adhesion kinase (FAK), PI3K, and Akt, suggesting disruption of key signaling pathways involved in cell motility and survival. In vivo, FKC administration led to reduced tumor growth, lower Ki-67 expression, and elevated γ-H2AX levels, indicating reduced proliferation and increased DNA damage in a Huh-7 xenograft mouse model [ 48 ].
Collectively, these findings suggest the promising anticancer potential of flavokawains in liver cancer; however, further studies are warranted to fully elucidate their mechanisms of action, address concerns about chemoresistance, and validate their therapeutic efficacy in clinical settings.
Lung cancer is the most commonly diagnosed malignancy globally, with an estimated 2.5 million new cases annually [ 112 ]. FKA induced a concentration-dependent inhibition of cell viability in lung cancer cells by inducing apoptosis as confirmed by PARP cleavage, while exhibiting no toxicity toward normal human hepatic epithelial THLE-3 cells. Additionally, FKA markedly suppressed P-glycoprotein, Akt, and p-Akt (Ser 473 ), suggesting its potential role in overcoming drug resistance through modulation of the PI3K/Akt signaling pathway [ 80 ]. Additionally, in a murine model of tumorigenesis induced by 4-(Methylnitrosamino)-1-(3-pyridyl)-1-butanone (NNK) and benzo[a]pyrene (BaP), treatment with FKA, FKB, and FKC each reduced tumor multiplicity by 27%, 34%, and 23%, respectively, suggesting a differential yet significant chemopreventive effect of each flavokawain [ 51 ]. Furthermore, FKB markedly reduced cell viability and clonogenic potential in lung cancer cells, while promoting apoptosis, as indicated by increased TUNEL-positive cells, activation of caspase-3 and -9, and subsequent PARP cleavage. Additionally, FKB induced ROS generation, contributing to oxidative stress-mediated cell death. An increase in microtubule-associated protein 1A/1B-light chain 3-II (LC3-II) expression was observed, suggesting the induction of autophagy. Concurrently, FKB treatment led to reductions in Bcl-2 and Bax protein levels, implicating disruption of mitochondrial integrity [ 82 ]. In another study, Chalcone-24, a synthetic flavokawain, was found to suppress both cell viability and NF-κB activation in lung cancer cells. At lower concentrations, treatment with Chalcone-24 elevated ERK1/2 and JNK phosphorylation, accompanied by enhanced caspase activity [ 81 ].
Collectively, these findings indicate that flavokawains possess significant anti-lung cancer activity by inhibiting tumor cell growth, inducing apoptosis and autophagy, suppressing oncogenic signaling pathways, and reducing tumor burden. However, further pharmacokinetic, toxicity, and clinical studies are required to validate their therapeutic potential.
An increase in white blood cell count in the blood and bone marrow is characteristic of this hematological malignancy [ 113 ]. Leukemia represents a notable global health burden, accounting for about 2.5% and 3.1% of all global cancer cases and mortality, respectively [ 114 ]. In a recent study, FKA was shown to induce a concentration-dependent reduction in the viability of acute myeloid leukemia (AML) cells and trigger G1 phase arrest through the downregulation of CCND1, CCNE1, CCNE2, CDK2, CDK4, CDK6, and CDT1, along with upregulation of the CDK inhibitor CDKN1B [ 83 ]. In ex vivo experiments using primary leukemic cells isolated from AML patients, FKA similarly reduced cell viability in a dose-dependent manner, with IC 50 values ranging from 3.86 to 9.45 μg/mL, reinforcing its therapeutic potential in AML [ 83 ]. Another study showed that FKB markedly inhibited proliferation and induced apoptosis in acute lymphoblastic leukemia (ALL) cells in vitro, in a dose-dependent manner, by enhancing caspase-3 activation and PARP cleavage. FKB treatment also led to a concentration-dependent upregulation of key pro-apoptotic regulators, including p53, Bax, and Puma. In vivo, FKB administration resulted in a notable reduction in leukocytes, white blood cell counts, and a decrease in splenomegaly, indicating systemic anti-leukemic activity. Ex vivo analysis of patient-derived B-ALL and T-ALL confirmed these findings, showing marked suppression of cell proliferation and elevated levels of p53, Bax, and Puma [ 52 ]. Further investigation demonstrated that FKB enhanced daunorubicin-induced reduction in cell viability, demonstrating an additive cytotoxic effect. Interestingly, rather than suppressing NF-κB activity, the combination treatment activated NF-κB, suggesting a complex interaction between FKB and daunorubicin [ 84 ].
Taken together, flavokawains exhibit potent anti-leukemic effects through the induction of cell-cycle arrest, activation of apoptotic pathways, and enhancement of chemotherapeutic efficacy, supporting their potential as novel therapeutic agents against leukemia. Nevertheless, further pharmacokinetic, toxicological, and clinical investigations are needed to facilitate their translation into leukemia therapy.
Melanoma, particularly in its advanced stages, presents a significant clinical challenge and is often associated with a poor prognosis [ 115 ]. In addition, synthetic flavokawains A (FLA) and B (FLB) demonstrated potent cytotoxic effects, reducing cell viability by approximately 85% and 80%, respectively. Both compounds induced a dose-dependent decrease in intracellular melatonin levels, indicating suppression of melatonin biosynthesis. This was further supported by reduced expression of key melanogenic markers, including tyrosinase (Tyr), tyrosinase-related proteins 1 and 2 (Trp-1, Trp-2), and microphthalmia-associated transcription factor (Mitf). In a zebrafish toxicity model, both FLA and FLB exhibited high survival rates, indicating low systemic toxicity while still effectively reducing melatonin content [ 85 ].
Glioblastoma (GBM) is a highly aggressive and uniformly fatal primary brain tumor, classified as a grade IV astrocytoma, and accounts for over 60% of all brain tumor cases [ 116 , 117 ]. To examine newer treatment modalities, FKB was studied in vitro in glioblastoma cells, where it produced a concentration-dependent reduction in cell viability [ 53 ]. This compound further induced G2/M arrest and promoted cellular senescence, as evidenced by the accumulation of senescence-associated β-galactosidase (SA-β-gal)-positive cells. Markers of autophagy, including increased MAP1LC3B-II and decreased SQSTM1 expression, indicated activation of the autophagic pathway. This autophagy appeared to be dependent on endoplasmic reticulum (ER) stress, as evidenced by the upregulation of ER stress-associated proteins, including HSPA5, phosphorylated EIF2AK3 and EIF2A, ATF4, and DDIT3. Additionally, FKB suppressed the phosphorylation of Akt, mTOR, and RPS6KB1, thereby inhibiting the Akt-mTOR-RPS6KB1 signaling axis and further implicating this pathway in autophagy induction by this compound. Moreover, in vivo administration of FKB at 50 mg/kg significantly reduced tumor growth in a U251 glioblastoma xenograft model in nude mice, indicating its potential anti-tumor efficacy [ 53 ]. However, effective glioblastoma treatment requires penetration of the blood–brain barrier (BBB), and there is currently no compelling evidence that FKB can adequately traverse it. Therefore, further investigations are required to evaluate its BBB permeability and elucidate potential strategies or delivery mechanisms to facilitate its transport across the BBB, thereby enhancing its suitability as a therapeutic candidate for glioblastoma treatment.
Despite the development of various therapeutic approaches, neuroblastoma remains associated with a high risk of relapse and disease-related mortality [ 118 ]. FKA exerted a dose-dependent suppression of cell proliferation and clonogenic potential in neuroblastoma cells by inducing G1-phase cell-cycle arrest and promoting apoptosis. In addition to its antiproliferative effects, FKA significantly impaired the cells’ invasive and migratory capabilities and downregulated EMT markers, including N-cadherin and Snail. Furthermore, FKA reduced VE-cadherin expression in a dose-dependent manner, indicating its capacity to inhibit angiogenesis and suppress tumor progression [ 86 ].
Collectively, these findings demonstrate that flavokawains exert promising anti-tumor effects against neuro-oncological malignancies by suppressing cell proliferation, inducing cell-cycle arrest, apoptosis, autophagy, and senescence, and inhibiting invasion, migration, angiogenesis, and EMT. Mechanistically, these effects are mediated through modulation of ER stress-associated pathways, inhibition of Akt/mTOR signaling, and regulation of EMT-related markers. However, further studies are required to elucidate their pharmacokinetic properties, validate their efficacy in clinically relevant preclinical models, and, particularly for glioblastoma, determine their ability to penetrate the BBB and achieve therapeutically effective concentrations within the central nervous system.
Ovarian cancer is a heterogeneous malignancy that frequently affects women under the age of 40 and ranks as the eighth most common cancer among females worldwide [ 119 ]. The combinatorial administration of FKA-A and PTX-A nanoparticles markedly reduced proliferation and clonogenic capacity in ovarian cancer cell lines. This treatment also significantly impaired cellular migratory ability, as evidenced by elevated E-cadherin and reduced vimentin expression, indicating suppression of EMT. Furthermore, in an A2780 xenograft mouse model, the combined therapy substantially inhibited tumor growth [ 87 ]. Another study reported that FKC led to a notable reduction in ovarian cancer cell viability [ 88 ]. However, further preclinical and clinical investigations are warranted to confirm the therapeutic potential of flavokawains in ovarian cancer and facilitate their clinical translation.
Prostate cancer is a major malignancy that poses a significant health concern for the male population [ 120 ]. FKA treatment produced a significant reduction in both the size and number of prostaspheres derived from DU145 and 22Rv1 cancer stem cells (CSCs), accompanied by downregulation of stemness-associated markers Oct4, Sox2, and Nanog. In vitro, FKA dose-dependently suppressed c-Myc expression in prostaspheres from both cell lines. In an in vivo model, dietary administration of FKA resulted in a 48% reduction in tumor volume, a 64% decrease in Ki-67-positive proliferating cells, and a marked decline in CD44-positive CSCs. Additionally, FKA inhibited Ubc12 neddylation and reduced c-Myc levels in xenograft tumor tissues [ 89 ]. In addition, FKA was shown to suppress proliferation in prostate cancer cells by inducing apoptosis and causing cell-cycle arrest at the G2/M phase, an effect associated with decreased survivin expression. Additionally, FKA treatment led to a dose-dependent reduction in intracellular GSH levels and glutathione synthetase (GSS) activity, resulting in a marked increase in ROS accumulation [ 90 ]. Also, FKB inhibited the neddylation of Cullin1 and Ubc12 by directly binding to the NEDD8-activating enzyme (NAE) regulatory subunit APP-BP1, thereby impairing SCF SKP2 complex function. This results in enhanced SKP2 ubiquitination and proteasomal degradation without affecting proteasome activity. This promoted SKP2 ubiquitination and proteasomal degradation without affecting proteasome activity, leading to reduced SKP2 expression and increased p27/Kip1 levels in prostate cancer cells [ 91 ]. Furthermore, FKB induced a ~90% reduction in prostate cancer cell viability at 17.6 µM, primarily via activation of caspases-3, -8, and -9, indicating apoptosis via intrinsic and extrinsic pathways. Upregulation of DR5 enhanced TRAIL-mediated apoptosis, while increased Bim and Puma and decreased XIAP and survivin further supported pro-apoptotic effects. In DU145 xenograft mice, FKB (50 mg/kg/day) reduced tumor volume by ~67% and increased Bim expression in tumor tissues [ 54 ]. Moreover, FKA significantly inhibited prostate cancer cell growth by approximately 93% in Rb-deficient DU145 cells and reduced the viability of Rb-deficient MEFs by 92%. The increased sensitivity of SKP2-overexpressing cells to FKA suggests that SKP2 may be a potential target of FKA in pRb-deficient prostate cancers. FKA treatment also decreased NEDDylation of Cullin1 and Ubc12, indicating disruption of protein degradation pathways. In a transgenic adenocarcinoma of mouse prostate (TRAMP) mouse model, dietary FKA suppressed high-grade prostatic intraepithelial neoplasia (HG-PIN) lesions by 69% and prostate adenocarcinomas by 43%, resulting in an overall 73% reduction in tumors. This was accompanied by decreased proliferation, enhanced apoptosis, and absence of metastasis [ 92 ]. In another study, FKB treatment led to a marked reduction in androgen receptor (AR) expression and prostate-specific antigen (PSA) protein levels. When combined with other kavalactones, FKB suppressed prostate cancer cell growth by over 70%. In patient-derived xenografts in SCID mice, FKB inhibited tumor growth by approximately 77.3% and significantly reduced serum PSA levels by the end of treatment [ 93 ].
Collectively, these studies demonstrate that flavokawains exert potent anti-prostate cancer activity by suppressing tumor cell proliferation, cancer stemness, androgen receptor signaling, and tumor progression while promoting cell-cycle arrest, oxidative stress, and apoptosis. Mechanistically, flavokawains target multiple oncogenic pathways, including NEDDylation, Skp2-mediated signaling, c-Myc regulation, and AR/PSA signaling, and exhibit efficacy in both castration-sensitive and castration-resistant prostate cancer models. Furthermore, their significant tumor-suppressive effects in xenograft and transgenic mouse models underscore their therapeutic potential.
In line with findings observed in other cancer types, flavokawain compounds have also been investigated in squamous carcinoma models, demonstrating significant anticancer activity. FKB treatment reduced cell viability and induced G2/M phase arrest in KB and HGF cells, accompanied by increased ROS production and mitochondrial dysfunction [ 94 ]. This was associated with cytochrome c release, activation of caspase-3 and -9, and upregulation of Fas and FasL, indicating activation of both intrinsic and extrinsic apoptotic pathways. FKB also downregulated Bcl-2 and upregulated Bax. Cell-cycle regulators, including cyclin A, cyclin B1, Cdc2, and Cdc25C, were suppressed, while p21/WAF1, Wee1, and p53 were upregulated. Additionally, FKB reduced the expression of the metastasis-associated proteins matrix metalloproteinase (MMP-9) and urokinase-type plasminogen activator (u-PA) and increased the expression of their inhibitors, tissue inhibitor of metalloproteinase-1 (TIMP-1) and plasminogen activator inhibitor-1 (PAI-1), in a dose-dependent manner. In vivo, FKB administration (0.75 mg/kg) significantly reduced tumor volume, suppressed angiogenesis, and increased TUNEL-positive cells, indicating enhanced apoptosis and reduced tumor cell proliferation in KB xenograft mice model [ 94 ].
Uterine leiomyosarcoma is a highly aggressive malignancy characterized by frequent recurrence, metastatic potential, and poor clinical outcomes [ 121 ]. FKB markedly inhibited uterine leiomyosarcoma cell growth by approximately 80%, induced G2/M cell-cycle arrest, and triggered apoptosis. This was associated with upregulation of pro-apoptotic proteins Bim, Puma, and DR5, along with downregulation of IAP and survivin. Notably, FKB exhibited a synergistic effect when combined with gemcitabine or docetaxel, resulting in enhanced suppression of cell proliferation [ 95 ].
The major molecular signaling pathways modulated by flavokawains across various cancer types are illustrated in Figure 5 .