Effect of Tinospora cordifolia-Derived Phytocomponents on Cancer: A Systematic Review
Abstract
1. Introduction
2. Methods
2.1. Inclusion Criteria
2.2. Exclusion Criteria
2.3. Information Sources and Search Strategies
2.4. Study Selection
3. Results
4. Discussion
4.1. Parts of the Tc with Anti-Carcinogenic Effect
4.2. Tc-Based Extracts
4.3. Dose Effect of Phytocomponents
4.4. Phytocomponents and Its Mechanism of Action against Cancer Cells
4.5. Anti-Carcinogenic Effect of Tc Phytocomponents
5. Conclusions
Author Contributions
Funding
Conflicts of Interest
References
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S. No. | Phytocomponents | Part in Use | Cancer Cell Lines | Anticancer Drugs Used with Tc | Effect on the Cancer Cells |
---|---|---|---|---|---|
1 | Berberine and isoquinolone [5] | Information not provided | HEP2 human laryngeal cancer cell line (in vitro) | 5-fluorouracil and cisplatin | Decreased gene expression of cell cycle, differentiation, and epithelial–mesenchymal transition |
2 | A new clerodane furano diterpene glycoside [6] | Fresh stems aqueous alcoholic extract | (in vitro) Human lung carcinoma cell line (A549), Prostate (PC-3), SF-269 (CNS), MDA-MB-435 (Melanoma), HCT-116 (Colon) and Breast (MCF-7) | Paclitaxel | Induction of mitochondria-mediated apoptosis and autophagy in HCT-116 cells |
5 | Information was not provided [7] | stem part aqueous and hydroalcohol extracts | Human breast carcinoma cell line MCF-7 | Doxorubicin | Induction of apoptosis |
6 | Phenol (ellagic acid and kaempferol) [8] | Leaf and stem Phenolic extract | CHO (Chinese Hamster Ovary) cell line | Doxorubicin | Mild cytotoxic effect noted at a high concentration of the extract |
7 | N-formylannonain, magnoflorine, jatrorrhizine palmatine, 11-hydroxymustakone, cordifolioside A, tinocordiside and yangambin [9] | Stem Ethanol extract | Human cancer cell lines, KB (human oral squamous carcinoma), CHOK-1 (hamster ovary), HT-29 (human colon cancer) and SiHa (human cervical cancer) and murine primary cells | Doxorubicin | Cytotoxicity of cells |
8 | Ethanol phytofraction [10] | Powdered plant samples hexane, ethanol, and water extract | Human cancer cell lines HeLa-B75, HL-60, HEP-3B, PN-15, and normal liver cell lines | Suramin | Cytotoxicity of cells and induction of apoptosis |
9 | Phytochemicals of Ethanolic extract [11] | Whole plant and stem ethanolic extracts aqueous extracts | on human breast cancer cells (MCF7 and MDA MB 231) | Doxorubicin | Cytotoxicity of cells, induction of apoptosis, cell cycle arrest in the G2/M phase |
11 | Anthraquinones, terpenoids, and saponins and phenol [12] | Stem solvents like petroleum, ether, chloroform, ethyl acetate, acetone, and water extract | prostrate (DU-145), ovary (IGROV- 1), and breast (MCF-7) cell lines | mitomycin-C (DU-145), paclitaxel against breast (MCF-7), and adriamycin (against ovary (IGR-OV-1) | Cell growth inhibition |
15 | Pyrrole-based small molecule [13] | Leaves ethyl acetate and aqueous extract | MDA-MB-231 breast cancer cells | Doxorubicin | Induction of apoptosis |
17 | Information was not provided [14] | Stem alcohol extract | human IMR-32 cell line | None | Upregulation of senescence and apoptosis |
18 | Phenolics contents quercetin and rutin [15] | Stems methanol extract | human breast cancer MDA-MB-231 cells | None | Anti-proliferative activity |
19 | Information was not provided [16] | ethanolic extract | Rat C6 glioma, U87MG human glioma, PC3 prostate cancer cell line, and HeLa cell line | None | Anti-proliferative, anti-migratory/anti-metastatic potential activity, and induction of apoptosis. |
20 | Ready product from standard ayurvedic pharmacy [17] | Information was not provided | KB cancer cell lines | Methotrexate | Cell cycle arrest at G0/G1 phase |
S. No. | Phytocomponents | Part in Use | Animals | Outcome |
---|---|---|---|---|
3 | Arabinogalactan a polysaccharide [18] | Stem Aqueous extract | Male BALB/c mice (25–30 g) benzo(a) pyrene-induced pulmonary tumor | Reduced tumor incidence and multiplicity, induction of apoptosis |
4 | Phenolic component [19] | Plant semiautomated capsule | DABA-induced mammary carcinogenesis in female Sprague-Dawley rats (breast cancer) | Tumor inhibition |
6 | Phenol (ellagic acid and kaempferol) [8] | Stem phenolic extract | Freshwater air-breathing fish Channa punctatus with DNA damage induction by nonionic surfactant nonylphenol | Non-cytotoxic, non-mutagenic, significant antioxidant activity, genoprotective effect |
10 | Alkaloid palmatine [20] | Stems methanol and aqueous extracts | Swiss albino mice injected with DMBA | Tumor inhibition |
12 | alkaloids including berberine [21] | stems dichloromethane alcoholic Extract | Swiss albino mice injected with Ehrlich ascites carcinoma (EAC) | Cytotoxicity of the cells |
13 | Antarth [22] | Plants aqueous extract | male Swiss albino mice injected with Ehrlich ascites carcinoma (EAC). | Reduces the cardiotoxicity associated with doxorubicin, but independently has no anti-carcinogenic effect |
14 | Triterpenoids and alkaloids [23] | stem methanolic extract | BALB RC and Swiss albino mice injected with Ehrlich ascites tumor cells | Tumor inhibition |
15 | Pyrrole-based small molecule [13] | Leaves methanolic extract | female Swiss albino mice injected with Ehrlich ascites tumor cells | Reduced tumor burden and two-fold increase in survival |
16 | Hexane fraction [24] | Stems solvents like hexane, benzene and chloroform | Swiss albino female mice injected intraperitoneally with Ehrlich ascites tumor (EAT) cells | Cell growth inhibition and induction of apoptosis |
20 | Polysaccharide [25] | Stem methanolic extract | C57BL/6 MICE injected by B16F-10 melanoma cell lines | Tumor inhibition |
21 | Clerodane-derived diterpenoids [26] | Stems alcoholic extraction | Male Wistar albino strain rats with diethylnitrosamine-induced hepatocellular carcinoma | Inhibiting tumor growth by blocking carcinogen metabolic activation and enhancing carcinogen detoxification. |
22 | Crude powder [27] | hydroethanolic (1:1) extract | Dalton lymphoma ascites (DLA) tumor model in Swiss albino mice | Reduced clonogenicity |
23 | Information was not provided [28] | Plant alcoholic extract | Inbred BALB/c mice tumor-associated macrophage (TAM)-derived dendritic cell to Dalton’s lymphoma-bearing mice | Enhances the differentiation of dendritic cells |
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Deepa, B.; Babaji, H.V.; Hosmani, J.V.; Alamir, A.W.H.; Mushtaq, S.; Raj, A.T.; Patil, S. Effect of Tinospora cordifolia-Derived Phytocomponents on Cancer: A Systematic Review. Appl. Sci. 2019, 9, 5147. https://doi.org/10.3390/app9235147
Deepa B, Babaji HV, Hosmani JV, Alamir AWH, Mushtaq S, Raj AT, Patil S. Effect of Tinospora cordifolia-Derived Phytocomponents on Cancer: A Systematic Review. Applied Sciences. 2019; 9(23):5147. https://doi.org/10.3390/app9235147
Chicago/Turabian StyleDeepa, Babji, Harsha V. Babaji, Jagadish V. Hosmani, Abdul Wahab H. Alamir, Shazia Mushtaq, A. Thirumal Raj, and Shankargouda Patil. 2019. "Effect of Tinospora cordifolia-Derived Phytocomponents on Cancer: A Systematic Review" Applied Sciences 9, no. 23: 5147. https://doi.org/10.3390/app9235147
APA StyleDeepa, B., Babaji, H. V., Hosmani, J. V., Alamir, A. W. H., Mushtaq, S., Raj, A. T., & Patil, S. (2019). Effect of Tinospora cordifolia-Derived Phytocomponents on Cancer: A Systematic Review. Applied Sciences, 9(23), 5147. https://doi.org/10.3390/app9235147