| Literature DB >> 26858957 |
Chen-Yi Liao1, Ching-Chang Lee2, Chi-chang Tsai2, Chao-Wen Hsueh2, Chih-Chiang Wang2, I-Hung Chen2, Ming-Kai Tsai2, Mei-Yu Liu2, An-Tie Hsieh2, Kuan-Jen Su2, Hau-Ming Wu2, Shih-Chung Huang2, Yi-Chen Wang2, Chien-Yao Wang2, Shu-Fang Huang2, Yen-Cheng Yeh2, Ren-Jy Ben2, Shang-Tao Chien3, Chin-Wen Hsu4, Wu-Hsien Kuo2.
Abstract
We would like to highlight the application of natural products to hepatocellular carcinoma (HCC). We will focus on the natural products known as flavonoids, which target this disease at different stages of hepatocarcinogenesis. In spite of the use of chemotherapy and radiotherapy in treating HCC, patients with HCC still face poor prognosis because of the nature of multidrug resistance and toxicity derived from chemotherapy and radiotherapy. Flavonoids can be found in many vegetables, fruits, and herbal medicines that exert their different anticancer effects via different intracellular signaling pathways and serve as antioxidants. In this review, we will discuss seven common flavonoids that exert different biological effects against HCC via different pathways.Entities:
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Year: 2015 PMID: 26858957 PMCID: PMC4695650 DOI: 10.1155/2015/840542
Source DB: PubMed Journal: Biomed Res Int Impact factor: 3.411
Figure 1Chemical structures of flavonoids that target HCC: EGCG (a), galangin (b), quercetin (c), baicalein (d), oroxylin A (e), genistein (f), and silibinin (g). EGCG: (−)-epigallocatechin-3-gallate; HCC: hepatocellular carcinoma.
Figure 2QUORUM algorithm of review of the flavonoids and hepatocellular carcinoma publications and abstracts.
Figure 3The different stages of HCC and the major targets modulated by various flavonoids. HCC: hepatocellular carcinoma; EGCG: (−)-epigallocatechin-3-gallate.
EGCG in HCC with possible mechanisms discussed in this paper.
| Subfamily | Flavonoids | Typical origin |
| Effects and related mechanisms | Author (year) |
|---|---|---|---|---|---|
| Flavonol | EGCG | Green tea |
| ↓ | Darweish et al. (2014) [ |
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| ↓ CYP2E1, ↓ EGFR, ↓ cyclin D1 and ↓ NF- | Shan et al. (2014) [ | |||
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| ↑ apoptosis by ↓ PI3K/AKT activity, ↓ NF- | Shen et al. (2014) [ | |||
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| ↑ TRAIL-induced apoptosis via ↑ caspase-3 activity, ↑ DR4 ↑ DR5 expression, and ↓ Bcl-2 expression and ↓ c-FLIP expression level |
Abou El Naga et al. (2013) [ | |||
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| ↓ STAT3 signaling pathway. ↓ Bcl-xL, ↓ c-Myc, ↓ VEGF, and ↓ cyclin D1 | Wang et al. (2013) [ | |||
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| ↑ apoptosis, ↓ metastasis via ↓ MMP-2, ↓ MMP-9 | Zhang et al. (2013) [ | |||
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| ↓ EP(1) receptor expression and ↓ PGE(2) production | Jin et al. (2012) [ | |||
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| ↑ apoptosis and ↓ Bcl-2 and ↑ miR-16 | Tsang and Kwok (2010) [ | |||
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| ↓ thrombin-induced HCC invasion and p42/p44-MAPKinase activation | Kaufmann et al. (2009) [ | |||
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| ↑ AMPK, ↓ mTOR, ↓ 4E-BP1, ↓ mRNA translation, ↓ FASN, and ↓ ACC | Huang et al. (2009) [ | |||
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| ↓ VEGF2, ↓ p-VEGFR-2; ↓ ERK and Akt, and ↓ Bcl-x(L) | Shirakami et al. (2009) [ | |||
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| ↓ MDR in HCC, ↓ MDR1, ↓ LRP expression, and ↑ cyclin G1 expression | Tang et al. (2008) [ | |||
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| ↓ COX-2, ↓ Bcl-2 (over 200 | Chen et al. (2008) [ | |||
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| ↓ IGF/IGF-1 receptor dependent signaling pathway by ↑ apoptosis, ↓ p-IGF-1R protein, ↓ p-ERK, ↓ p-Akt, ↓ p-Stat-3, and ↓ p-GSK-3 | Shimizu et al. (2008) [ | |||
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| ↓ tumor invasion and migration via ↓ MMP-9 and MMP-2 | Sang et al. (2007) [ | |||
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| ↑ apoptosis in HLE cells via ↓ Bcl-2 | Nishikawa et al. (2006) [ | |||
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| ↓ hypoxia induced HIF-1 protein; ↓ VEGF; ↓ PI3/Akt/mTOR pathways, and ↓ ERK 1/2 signaling pathways | Zhang et al. (2006) [ | |||
↑: Intensify; ↓: attenuate; N/A: none available; EGCG: (−)-epi-gallocatechin-3-gallate; SD rats: Sprague Dawley rats; DEN: diethylnitrosamine; MMP: matrix metalloproteinase; TIMP: metallopeptidase inhibitor 1; FGF: fibroblast growth factor; EGFR: epidermal growth factor receptor; CYP: cytochrome; PKCα: protein kinase C-alpha; EMT: epithelial-mesenchymal transition; IκB-β: I-kappa-β; PI3: phosphatidylinositol 3-kinase; PTEN: phosphatase and tensin homolog; NFAT1: nuclear factor of activated T cells 1; DR: death receptor; TRAIL: tumor necrosis factor-related apoptosis inducing ligand; c-FLIP: cellular FLICE inhibitory protein; STAT3: signal transducer and activator of transcription 3; VEGF: vascular endothelial growth factor; EP(1): prostaglandin E receptor 1; MAPK: p38-beta mitogen-activated protein kinase; AMPK: AMP-activated protein kinase; mTOR: mammalian target of rapamycin; 4E-BP1: eukaryotic initiation factor 4E-binding protein-1; FASN: fatty acid synthase; ACC: acetyl-CoA carboxylase; ERK: extracellular signal regulated kinases; MDR: multidrug resistance; LRP: lung resistance protein; IGF: insulin-like growth factor; GSK-3β: glycogen synthase kinase-3β; HIF-1: hypoxia-inducible factors; IGFBP-3: insulin-like growth factor binding protein-3; ER: endoplasmic reticulum; UPR: unfolded protein response; JNK: c-Jun N-terminal kinases; MTP: mitochondrial transmembrane potential; CAM-DR: cell adhesion mediated drug resistance; MDR: multidrug resistance; MAC: mitochondrial apoptosis-induced channel; AIF: apoptosis-inducing factor; 5-FU: 5-fluororuracil; PARP: poly ADP-ribose polymerase; AP-1: activator protein 1; ATO: arsenic trioxide; FAK: focal adhesion kinase; CDK: cyclin-dependent kinases; GRP: glucose-regulated protein; CHOP: C/EBP-homologous protein; ROS: reactive oxygen species; DOX: doxorubicin; HSP: heat shock proteins; PKC-α: protein kinase C-alpha; α-FP: alpha-fetoprotein; CPK: checkpoint kinase 1; SOD: superoxide dismutase; HIF: hypoxia-inducible factor; GSH: glutathione; T-AOC: total antioxidant capability; AC-H: acetylation of histone H.
Baicalein in HCC with possible mechanisms discussed in this paper.
| Subfamily | Flavonoids | Typical origin |
| Effects and related mechanisms | Author (year) |
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| Flavones | Baicalein |
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| ↑ protective autophagy, ↓ AKT/mTOR pathways | Wang et al. (2015) [ |
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| ↑ apoptosis via ER stress, possibly by ↓ Bcl-2 family, ↑ intracellular calcium, and ↑ JNK |
Wang et al. (2014) [ | |||
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| ↑ G0/G1 cell cycle arrest, ↓ cancer cell proliferation, ↓ AKT ↓ | Zheng et al. (2014) [ | |||
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| ↓ tumor cell invasion, ↓ metastasis by ↓ cell motility | Chen et al. (2013) [ | |||
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| ↑ apoptosis, ↓ MEK1, ↓ ERK1/2, ↓ Bad, ↓ MTP, ↑ caspase-9, and ↑ caspase-3 |
Liang et al. (2012) [ | |||
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| ↓ adhesion, invasion, migration, and proliferation | Chiu et al. (2011) [ | |||
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| ↑ G2/M arrest and ↑ apoptosis (ER-dependent) | Kuo et al. (2009) [ | |||
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| ↑ G2/M population in Hep G2 cells | Chang et al. (2002) [ | |||
For abbreviations see footer of Table 1.
Oroxylin A in HCC with possible mechanisms discussed in this paper.
| Subfamily | Flavonoids | Typical origin |
| Effects and related mechanisms | Author (year) |
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| Flavones | Oroxylin A |
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| ↑ H2O2-triggered overactivation of the UPR pathway and |
Xu et al. (2012) [ |
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| ↑ autophagy-mediated antitumor activity | Zou et al. (2012) [ | |||
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| ↓ CAM-DR, ↓ integrin | Zhu et al. (2012) [ | |||
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| ↑ sensitivity of HepG2 cells to 5-FU by ↑ P53 and cleaved PARP; ↓ COX-2, ↓ Bcl-2, and ↓ pro-caspase-3 | Zhao et al. (2010) [ | |||
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| ↑ apoptosis by MAC-related mitochondrial pathway | Liu et al. (2009) [ | |||
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| ↑ apoptotic and G(2)/M phase arrest cells | Hu et al. (2006) [ | |||
For abbreviations see footer of Table 1.
Genistein in HCC with possible mechanisms discussed in this paper.
| Subfamily | Flavonoids | Typical origin |
| Effects and related mechanisms | Author (year) |
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| Isoflavones | Genistein | Dyer's broom ( |
| Regulation of MDR proteins, ↑ P-gp, and ↑ MRP2 protein; nutrient-drug interactions, ↑ chemoresistance to sorafenib |
Rigalli et al. (2015) [ |
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| ↑ E-cadherin, ↑ | Dai et al. (2015) [ | |||
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| ↓ NF- | Wang et al. (2014) [ | |||
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| Synergistic effect with geneistin via ↓ cisplatin-induced MMP-2 expression | Chen et al. (2013) [ | |||
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| ↑ ATO suppressive effect via ↓ NF- | Ma et al. (2011) [ | |||
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| ↑ apoptosis ↑ Fas, ↑ FasL, and ↑ p53; ↑ Bcl-2, ↑ caspase-9 and ↑ caspase-3, and ↑ PARP cleavage | Fang et al. (2010) [ | |||
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| Synergistic effect with ATO via ↓ Bcl-2 expression, ↑ Bax expression, ↑ caspase-9 and -3, ↑ cytochrome c, and ↑ ROS | Jiang et al. (2010) [ | |||
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| ↓ p38MAPK and ↑ TRAIL-mediated apoptosis; | Jin et al. (2009) [ | |||
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| ↑ cells in G0/G1 phase, ↓ S-phase | Chen et al. (2008) [ | |||
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| ↑ G(0)/G(1) cell cycle arrest, | Gu et al. (2009) [ | |||
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| ↑ ER stress and ↑ mitochondrial insult in Hep3B cells, ↑ m-calpain, ↑ GADD153, ↑ GRP78, and ↑ caspase-12 | Yeh et al. (2007) [ | |||
For abbreviations see footer of Table 1.
Galangin in HCC with possible mechanisms discussed in this paper.
| Subfamily | Flavonoids | Typical origin |
| Effects and related mechanisms | Author (year) |
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| Flavonols | Galangin |
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| ↑ autophagy via ↑ TGF- | Wang et al. (2014) [ |
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| ↑ MAPKs involved in ER stress with ↑ GRP94, ↑ GRP78 and ↑ CHOP, and ↑ free cytosolic Ca2+ concentration | Su et al. (2013) [ | |||
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| ↑ apoptosis, ↑ autophagy through a p53-dependent pathway | Wen et al. (2012) [ | |||
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| ↑ apoptosis through a mitochondrial pathway ↑ AIF, ↑ cytochrome c | Zhang et al. (2010) [ | |||
For abbreviations see footer of Table 1.
Quercetin in HCC with possible mechanisms discussed in this paper.
| Subfamily | Flavonoids | Typical origin |
| Effects and related mechanisms | Author (year) |
|---|---|---|---|---|---|
| Flavonols | Quercetin | Fruits, vegetables, leaves, and grains |
| Apoptotic cell death by regulating cell cycle and ↓ antiapoptotic proteins (Sp1 and Sp1 regulatory protein) | Lee et al. (2015) [ |
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| Berries, grapes, potatoes, tomatoes, and onions |
| ↑ G2/M phase arrest accompanied by an ↑ apoptotic cell death apoptosis via ↑ p53, ↑ p21, ↓ Cyclin D1, ↓ Cdk2, Cdk7 levels, and ↑ ROS | Li et al. (2014) [ | ||
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| ↑ p16-mediated cell cycle arrest and ↑ apoptosis | Zhao et al. (2014) [ | |||
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| ↑ apoptosis, ↑ caspase 9 ↑ caspase 3, and ↑ PARP | Vásquez-Garzón et al. (2013) [ | |||
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| ↑ DOX-mediated apoptosis in p53-dependent hepatoma cells | Wang et al. (2012) [ | |||
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| ↓ HSPs in HepG2 cells | Zhou et al. (2011) [ | |||
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| ↓ NF- | Granado-Serrano et al. (2010) [ | |||
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| ↑ oxidative stress, ↑ ROS | Chang et al. (2009) [ | |||
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| ↑ TRAIL-induced apoptosis via ↑ Sp1-mediated DR5 and ↓ c-FLIPS | Kim et al. (2008) [ | |||
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| Tight regulation of survival/proliferation pathways via ↓ | Granado-Serrano et al. (2008) [ | |||
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| ↑ caspase-3, ↑ caspase -9, ↓ Bcl-xL/Bcl-xS, | Granado-Serrano et al. (2006) [ | |||
For abbreviations see footer of Table 1.
Silibinin in HCC with possible mechanisms discussed in this paper.
| Subfamily | Flavonoids | Typical origin |
| Effects and related mechanisms | Author (year) |
|---|---|---|---|---|---|
| Flavonolignans | Silibinin | Extract of the milk thistle seeds |
| ↓ EGFR-dependent Akt signaling | Gu et al. (2015) [ |
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| ↓ tumor cell adhesion, migration, ↓ GSH, ↓ T-AOC ↑ apoptotic index, ↑ caspase-3, and ↑ ROS | Zhang et al. (2013) [ | |||
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| ↓ Ki-67 and ↓ | Cui et al. (2009) [ | |||
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| ↓ cell proliferation | García-Maceira et al. (2009) [ | |||
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| ↓ cell proliferation, ↓ MMP 2 enzymatic activity, ↓ NO | Momeny et al. (2008) [ | |||
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| ↑ p21/CDK4 and p27/CDK4 complexes, | Lah et al. (2007) [ | |||
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| ↑ G1 arrest in HepG2 and ↑ G1 and G2-M arrests in Hep3B cells | Varghese et al. (2005) [ | |||
For abbreviations see footer of Table 1.