Medicinal Herbs Used in Traditional Management of Breast Cancer: Mechanisms of Action
Abstract
:1. Introduction
2. Ginseng
2.1. Different Types of Ginseng and its Preparation
2.2. The in Vitro Anti-Tumor Effects of the Bioactve Compounds of Ginseng
2.3. Effects of Ginseng in Combination with Anti-Cancer Drugs
2.4. Clinical Studies with Ginseng
3. Garlic (Allium Sativum)
3.1. The Bioactive Compounds of Garlic
3.2. In Vitro and in Vivo Studies of the Active Compounds of Ginseng and Their Anti-Cancer Effect
3.3. Clinical Studies with Garlic
4. Black Cohosh (Cimicifuga racemosa)
4.1. The Bioactive Compounds of Black Cohosh
4.2. Clinical Studies with Black Cohosh
5. Tumeric (Curcuma longa)
5.1. The Bioactive Compounds of Curcumin Longa
5.2. In Vitro Studies of the Anti-Cancer Effects of Curcumin
5.3. Effects of Curcumin in Combination with Anti-Cancer Drugs
6. Camellia Sinenis (Green Tea)
6.1. The Bioactive Compounds of Green Tea
6.2. In Vivo and Clinical Studies of the Anti-Cancer Effects of Green Tea
6.3. Effects of Epigallocatechin-3-Gallate in Combination with Anti-Cancer Drugs
7. Echinacea
7.1. Species of Echinacea and Their Bioactive Compounds
7.2. In Vitro and Clinical Studies of Echinacea and Drug-Herbal Interaction
8. Arctium (Burdock)
8.1. The Bioactive Compounds of Burdock
8.2. In Vitro Studies of the Antitumor Activities of Arctium Lappa
8.3. Effects of Arctium Lappa in Combination with Anti-Cancer Drugs
9. Flaxseed (Linum usitatissimum)
9.1. The Bioactive Compounds of Flaxseed
9.2. Experimental In Vitro Studies of the Antitumor Activities of Flaxseed
9.3. Effects of Flaxseed in Combination with Anti-Cancer Drugs
9.4. Clinical Studies of the Anti-Cancer Effects of Flaxseed
10. Black Cumin (Nigella sativa)
10.1. The Bioactive Compounds of Nigella sativa
10.2. Thymoquinone’s Anti-Cancer Effects In Vitro and In Vivo Animal Models
10.3. Pharmacokinetic Characteristics of Thymoquinone and Its Combination with Other Chemotherapeutic Drugs
10.4. Clinical Studies Using Thymoquinone and Nigella sativa
11. Conclusions
Author Contributions
Funding
Conflicts of Interest
References
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Herbs | Main Active Chemical Constituents | Animal Model/Tumor Cell Line | Anti-Cancer Activities/Outcome | Molecular Mechanisms/Outcome | References |
---|---|---|---|---|---|
Ginseng | Ginsenoside Rh2 | MDA-MB-231 and MCF-7 breast cancer cell lines | Anti-proliferative and apoptosis | (i) Induce changes in hypo-methylated genes (ii) Mediate G(0)/G(1) phase cell cycle arrest (iii) inhibit the production of inflammatory cytokines (iv) Obstruct nuclear factor (NF)-κB signaling and mitogen-activated protein kinase pathways | [30,32,34,35] |
Ginseng | Ginsenoside Rg3 | MDA-MB-231 and MCF-7 breast cancer cell lines | Anti-proliferative | (i) Decrease expression of cyclin D1 and cyclin A (ii) Arrest cells in the G-1 phase | [36] |
Garlic | Diallyl disulfide | MDA-MB-468 cancer cell line and female Swiss albino mice with EAC tumor | Decrease tumor growth and apoptosis | (i) Induce apoptosis by promoting caspase-3 expression (ii) Prevent oxidative degradation of anti-tumor protein, p53 | [37] |
Curcuma longa | Curcumin | MDA-MB-231 and BT-483 breast cancer cells | Anti-proliferative effect in a dose-dependent manner | (i) Downregulation of NFkappaB inducing genes (ii) Decrease transcription of matrix metalloproteinases (MMPs)-1 and cyclin D | [38] |
Curcuma longa | Curcumin | MCF-7 and MDA-MB-231 breast cancer cells | Inhibition of cell proliferation and induction of apoptosis | Down-regulation of the beta-catenin pathway | [39] |
Echinacea | Extracts of Echinacea purpurea | BT-549 mammalian breast cancer cell | Inhibition of cell proliferation | Mechanism not given | [40] |
Arctium lappa (greater burdock) | Arctigenin | MDA-MB-231 breast cancer cells | Induce apoptosis | (i) Activation of the ROS/p38 MAPK pathway (ii) Induction of mitochondrial caspase-independent pathways with increased Bax/Bcl-2 ratio | [41] |
Arctium lappa (greater burdock) | Arctigenin | MCF-7 and MDA-MB-231 human breast cancer cell lines | Anti-metastatic effect | Inhibiting the NF-κB, Akt/MAPK signaling pathways, and MMP-9 | [42] |
Flaxseed (dietary) | Lignans | Athymic mice inoculated with human MCF-7 cancer cells | Inhibition of cell proliferation and induced apoptosis | Reduced mRNA expressions of cyclin D1, epidermal growth factor receptor and Bcl2 | [43] |
Nigella sativa | Thymoquinone | T-47D and MDA-MB-468 breast cancer cells | Induced apoptosis | (i) Promote G (1) phase arrest via translation upregulation of procaspase-3 and Bax (ii) Inhibition of cyclin D1 and cyclin E, and PARP cleavage alongside downregulation of the gene expression of survivin, Bcl-2 and Bcl-xL | [44] |
Nigella sativa | Thymoquinone | MCF-7 breast cancer cell line | Induced apoptosis | Upregulation of the expression of tumor suppressor gene p53 in a time-dependent manner | [45] |
Nigella sativa | Thymoquinone | MDA-MB-231 triple-negative breast cancer cells | Anti-metastatic effect | Downregulate the expressions of CXCR4 in breast cancer cells in a time- and dose-dependent manner | [46] |
Herbs | Main Active Chemical Constituents | Study Design - Cell Culture, Animal Model or Clinical | Anti-Cancer Drug | Endpoint and Results | References |
---|---|---|---|---|---|
Ginseng | Ginsenoside Rg3 | MCF-7 xenografts in nude mice | Paclitaxel | (i) Enhanced the oral bioavailability of paclitaxel (ii) Improved the anti-tumor activity of paclitaxel | [54] |
Cimicifuga racemose (Black cohosh) | - | Randomized controlled trial of 136 breast cancer patients | Tamoxifen | Significant reduction in the number and severity of hot flushes | [56] |
Curcuma longa | Curcumin | MCF-7 and the basal-like MDA-MB-231 cancer cell lines | Paclitaxel | Synergistic therapy with (i) Decreased breast carcinogenesis by downregulating the expressions of Rho-A, p53 and Bcl-2 (ii) Decrease toxicity | [57] |
Curcuma longa | Curcumin | MCF-7, SKBR3 and MDA-MB-231 breast cancer cell lines | 5-fluorouracil | Increased sensitization via reducing the expression of thymidylate synthase and downregulating nuclear factor-κB | [58] |
Camellia sinensis (Green tea) | Epigallocatechin gallate (EGCG) and quercetin | MCF-7 and MDA-MB-23 breast cancer cells | Tamoxifen | Synergistic activity with reduced tumor cell proliferation | [59] |
Echinacea | Hexane fractions of Echinacea purpurea containing cynarin | MCF-7 breast cancer cell lines. | Doxorubicin | Enhanced cytotoxic activity of doxorubicin | [60] |
Arctium lappa on | Arctigenin | (MCF7 and MDA-MB-231 breast cancer cell lines. | Doxorubicin | Synergistic effect with decreased cell viability and induced apoptosis | [61] |
Flaxseed | Lignan | Athymic mice inoculated with MCF-7 breast cancer cells. | Tamoxifen | Tumor regression by over 53% | [62] |
Flaxseed | Flaxseed oil (lignans) | Athymic micewith HER2-overexpressing tumor (BT-474). | Trastuzumab | Reduced phosphorylated/total expression of Akt and MAPK protein expression | [63] |
Nigella sativa | Thymoquinone | MDA-MB-231 human breast cancer and estrogen positive MCF-7 cells. | Tamoxifen | Synergistic effect with decreased cell viability and induced apoptosis | [64] |
Nigella sativa | Thymoquinone | MCF-7/DOX cells. | Doxorubicin | (i) Apoptosis in doxorubicin-resistant human breast cancer cells via upregulation of PTEN and inhibition of Akt phosphorylation. (ii) Increased cellular levels of p21 and p53 proteins | [65] |
Nigella sativa | Thymoquinone | MCF-7 and T47D breast cancer cells. | Paclitaxel | (i) Decreased resistance to paclitacel (ii) Increased percentage of apoptotic cell death particularly in using MCF-7 | [66] |
Nigella sativa | Thymoquinone | Her2- MDA-231 and Her2+ SKBR-3 breast cancer lines. | Cyclophosphamide | (i) Inhibited the proliferation of cancer cells in the G1 phase (ii) Upregulated PTEN and downregulated the phosphorylation of Akt | [67] |
Herbs | Main Active Chemical Constituents /Quantity | Study Design | Endpoints and Results | References |
---|---|---|---|---|
Garlic | - | Population-based, case control, 314 cases and 346 controls | Inverse association between breast cancer and moderate as well as high consumption | [89] |
Camellia sinensis (Green tea) | Epigallocatechin-3-gallate | Case-control study of 1009 female breast cancer patients and age-matched controls | Significant protection against breast cancer (OR = 0.61) | [93] |
Camellia sinensis (Green tea) | Epigallocatechin-3-gallate | 472 female breast cancer patients with stage I, II and stage III disease | (i) Relative risk of recurrence of 0.564 (95% CI: 0.35 - 0.91) (ii) Prior use before diagnosis was significantly associated with better prognosis of stage I and II | [94] |
Flaxseed (dietary) | Lignans | Ontario Women’s Diet and Health Study of 2,999 cases and 3,370 controls | Significant decrease in breast cancer risk (OR = 0.77) | [95] |
Flaxseed (dietary) | Lignans | Randomized double-blind placebo-controlled clinical trial of postmenopausal women newly diagnosed with breast cancer | Reduced tumor growth associated with downregulation of c-erbB2 expression and reduced Ki-67 labeling index | [96] |
Nigella sativa | Nigella sativa 5% gel | Randomized, double-blind, placebo-controlled clinical trial comprising 62 breast cancer patients undergoing radiotherapy | Significantly reduced the severity of acute radiation dermatitis and delays the onset of moist desquamation | [97] |
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McGrowder, D.A.; Miller, F.G.; Nwokocha, C.R.; Anderson, M.S.; Wilson-Clarke, C.; Vaz, K.; Anderson-Jackson, L.; Brown, J. Medicinal Herbs Used in Traditional Management of Breast Cancer: Mechanisms of Action. Medicines 2020, 7, 47. https://doi.org/10.3390/medicines7080047
McGrowder DA, Miller FG, Nwokocha CR, Anderson MS, Wilson-Clarke C, Vaz K, Anderson-Jackson L, Brown J. Medicinal Herbs Used in Traditional Management of Breast Cancer: Mechanisms of Action. Medicines. 2020; 7(8):47. https://doi.org/10.3390/medicines7080047
Chicago/Turabian StyleMcGrowder, Donovan A., Fabian G. Miller, Chukwuemeka R. Nwokocha, Melisa S. Anderson, Cameil Wilson-Clarke, Kurt Vaz, Lennox Anderson-Jackson, and Jabari Brown. 2020. "Medicinal Herbs Used in Traditional Management of Breast Cancer: Mechanisms of Action" Medicines 7, no. 8: 47. https://doi.org/10.3390/medicines7080047
APA StyleMcGrowder, D. A., Miller, F. G., Nwokocha, C. R., Anderson, M. S., Wilson-Clarke, C., Vaz, K., Anderson-Jackson, L., & Brown, J. (2020). Medicinal Herbs Used in Traditional Management of Breast Cancer: Mechanisms of Action. Medicines, 7(8), 47. https://doi.org/10.3390/medicines7080047