COVID-19: General Strategies for Herbal Therapies

1. Lipsitch, M, Swerdlow, DL, Finelli, L. Defining the epidemiology of COVID-19—studies needed. N Engl J Med. 2020;382(13):1194-1196.
Google Scholar | Crossref | Medline2. Vivek-Ananth, R, Rana, A, Rajan, N. In silico identification of potential natural product inhibitors of human proteases key to SARS-CoV-2 infection. Molecules 2020;25(17):3822.
Google Scholar | Crossref3. WHO Coronavirus Disease (COVID-19) Dashboard. https://covid19.who.int/ (accessed November 20, 2020).
Google Scholar4. Rothan, HA, Byrareddy, SN. The epidemiology and pathogenesis of coronavirus disease (COVID-19) outbreak. J Autoimmun. 2020;109:102433.
Google Scholar | Medline5. Shi, Y, Wang, Y, Shao, C, et al. COVID-19 infection: the perspectives on immune responses. Cell Death Differ. 2020;27:1451-1454.
Google Scholar | Crossref | Medline6. Liu, Z, Xiao, X, Wei, X, et al. Composition and divergence of coronavirus spike proteins and host ACE2 receptors predict potential intermediate hosts of SARS-CoV-2. J Med Virol. 2020;92(6):595-601.
Google Scholar | Crossref | Medline7. Huang, C, Wang, Y, Li, X, et al. Clinical features of patients infected with 2019 novel coronavirus in Wuhan, China. The Lancet. 2020;395(10223):497-506.
Google Scholar | Crossref | Medline8. Petrovska, BB . Historical review of medicinal plants’ usage. Pharmacogn Rev. 2012;6(11):1.
Google Scholar | Crossref | Medline9. Pan, S-Y, Zhou, S-F, Gao, S-H, et al. New perspectives on how to discover drugs from herbal medicines: CAM’s outstanding contribution to modern therapeutics. Evid Based Complementary Altern Med. 2013;2013:1-25.
Google Scholar10. Zaman, Wet al. COVID-19: phylogenetic approaches may help in finding resources for natural cure. Phytother Res. 2020;34(11):2783-2785.
Google Scholar11. Rosales-Mendoza, S . Will plant-made biopharmaceuticals play a role in the fight against COVID-19? Expert Opin Biol Ther. 2020;20(6):545-548.
Google Scholar | Crossref | Medline12. Khan, Set al. COVID-19: clinical aspects and therapeutics responses. Saudi Pharm J. 2020;28(8):1004-1008.
Google Scholar | Crossref | Medline13. Jalali, A, Dabaghian, F, Akbrialiabad, H, Foroughinia, F, Zarshenas, MM. A pharmacology-based comprehensive review on medicinal plants and phytoactive constituents possibly effective in the management of COVID-19. Phytother Res. 2021;35(4):1925-1938.
Google Scholar | Crossref | Medline14. Benarba, B, Pandiella, A. Medicinal plants as sources of active molecules against COVID-19. Front Pharmacol. 2020;11:1-16.
Google Scholar15. Adhikari, B, Marasini, BP, Rayamajhee, B, et al. Potential roles of medicinal plants for the treatment of viral diseases focusing on COVID-19: a review. Phytother Res. 2021;35(3):1298-1312.
Google Scholar | Crossref | Medline16. Mrityunjaya, M, Pavithra, V, Neelam, R, et al. Immune-boosting, antioxidant and anti-inflammatory food supplements targeting pathogenesis of COVID-19. Front Immunol. 2020;11:1-12.
Google Scholar17. Arshad, MS, Khan, U, Sadiq, A, et al. Coronavirus disease (COVID-19) and immunity booster green foods: a mini review. Food Sci Nutr. 2020;8(8):3971-3976.
Google Scholar | Crossref18. Zahedipour, F, Hosseini, SA, Sathyapalan, T, et al. Potential effects of curcumin in the treatment of COVID-19 infection. Phytother Res. 2020; 34(11):2911-2920.
Google Scholar19. Bae, G-S, Kim, M-S, Jung, W-S, et al. Inhibition of lipopolysaccharide-induced inflammatory responses by piperine. Eur J Pharmacol. 2010;642(1–3):154-162.
Google Scholar | Crossref | Medline20. Donma, MM, Donma, O. The effects of Allium Sativum on immunity within the scope of COVID-19 infection. Med Hypotheses. 2020;144:109934.
Google Scholar | Medline21. Arreola, R, Quintero-Fabián, S, López-Roa, RI, et al. Immunomodulation and anti-inflammatory effects of garlic compounds. J Immunol Res. 2015;2015:401630.
Google Scholar22. Mirabeau, TY, Samson, ES. Effect of Allium cepa and Allium sativum on some immunological cells in rats. Afr J Tradit Complement Altern Med. 2012;9(3):374-379.
Google Scholar | Crossref | Medline23. Daverey, A, Dutta, K. COVID-19: eco-friendly hand hygiene for human and environmental safety. J Environ Chem Eng. 2020: 9(2);104754.
Google Scholar | Medline24. Li, X, Duan, S, Chu, C, et al. Melaleuca alternifolia concentrate inhibits in vitro entry of influenza virus into host cells. Molecules. 2013;18(8):9550-9566.
Google Scholar | Crossref | Medline25. Abdelli, I, Hassani, F, Bekkel Brikci, S, Ghalem, S. In silico study the inhibition of angiotensin converting enzyme 2 receptor of COVID-19 by Ammoides verticillata components harvested from western Algeria. J Biomol Struct Dyn. 2020;39(9):1-14.
Google Scholar26. Ahmad, S, Abbasi, HW, Shahid, S, Gul, S, Abbasi, SW. Molecular docking, simulation and MM-PBSA studies of nigella sativa compounds: a computational quest to identify potential natural antiviral for COVID-19 treatment. J Biomol Struct Dyn. 2020;39(12):4225-4233.
Google Scholar | Medline27. Boozari, M, Hosseinzadeh, H. Natural products for COVID-19 prevention and treatment regarding to previous coronavirus infections and novel studies. Phytother Res. 2020;35(2):864-876.
Google Scholar28. Güler, HI, Tatar, G, Yildiz, O, Belduz, AO, Kolayli, S. Investigation of potential inhibitor properties of ethanolic propolis extracts against ACE-II receptors for COVID-19 treatment by molecular docking study. ScienceOpen Preprints. 2020; 203(6):3557-3564.
Google Scholar29. Yang, L, Li, Y-T, Miao, J, et al. Network pharmacology studies on the effect of Chai-Ling decoction in coronavirus disease 2019. J Tradit Complement Med. 2020;5(3):145-159.
Google Scholar30. Sekiou, O, Bouziane, I, Bouslama, Z. In-Silico Identification of Potent Inhibitors of COVID-19 Main Protease (Mpro) from Natural Products. Int J Biochem Physiol. 2020; 5(3): 1-12.
Google Scholar31. Kumar, V, Dhanjal, JK, Bhargava, P, et al. Withanone and withaferin-A are predicted to interact with transmembrane protease serine 2 (TMPRSS2) and block entry of SARS-CoV-2 into cells. J Biomol Struct Dyn. 2020:1-13.
Google Scholar32. Chowdhury, P . In silico investigation of phytoconstituents from Indian medicinal herb ‘Tinospora cordifolia (giloy)’ against SARS-CoV-2 (COVID-19) by molecular dynamics approach. J Biomol Struct Dyn. 2020;39(17):6792-6809.
Google Scholar | Medline33. Ulasli, M, Gurses, SA, Bayraktar, R, et al. The effects of Nigella sativa (Ns), Anthemis hyalina (Ah) and Citrus sinensis (Cs) extracts on the replication of coronavirus and the expression of TRP genes family. Mol Biol Rep. 2014;41(3):1703-1711.
Google Scholar | Crossref | Medline34. Chikhale, RV, Sinha, SK, Patil, RB, et al. In-silico investigation of phytochemicals from Asparagus racemosus as plausible antiviral agent in COVID-19. J Biomol Struct Dyn. 2020;39(14):5033-5047.
Google Scholar35. Cinatl, J, Morgenstern, B, Bauer, G, Chandra, P, Rabenau, H, Doerr, HW. Glycyrrhizin, an active component of liquorice roots, and replication of SARS-associated coronavirus. The Lancet. 2003;361(9374):2045-2046.
Google Scholar | Crossref | Medline36. Chen, LF, Zhong, YL, Luo, D, et al. Antiviral activity of ethanol extract of Lophatherum gracile against respiratory syncytial virus infection. J Ethnopharmacol. 2019;242:111575.
Google Scholar | Crossref | Medline37. Lee, EJ, Ko, E, Lee, J, et al. Ginsenoside Rg1 enhances CD4( + ) T-cell activities and modulates Th1/Th2 differentiation. Int Immunopharmacol. 2004;4(2):235-244.
Google Scholar | Crossref | Medline38. Bahrami, M, Kamalinejad, M, Latifi, SA, Seif, F, Dadmehr, M. Cytokine storm in COVID-19 and parthenolide: preclinical evidence. Phytother Res. 2020;34(10):2429-2430.
Google Scholar | Crossref | Medline39. Nikolai, G, Friedl, P, Werner, M, Niggemann, B, Zänker, KS. Effect of a mistletoe extract (Iscador QuFrF) on viability and migratory behavior of human peripheral CD4+and CD8+ T lymphocytes in three-dimensional collagen lattices. In Vitro Cell Dev Biol Animal. 1997;33(9):710-716.
Google Scholar | Crossref | Medline40. Kim, EH, Shim, B, Kang, S, et al. Anti-inflammatory effects of Scutellaria baicalensis extract via suppression of immune modulators and MAP kinase signaling molecules. J Ethnopharmacol. 2009;126(2):320-331.
Google Scholar | Crossref | Medline41. Berretta, AA, Silveira, MAD, Cóndor Capcha, JM, De Jong, D. Propolis and its potential against SARS-CoV-2 infection mechanisms and COVID-19 disease: running title: propolis against SARS-CoV-2 infection and COVID-19. Biomed Pharmacother. 2020;131:110622.
Google Scholar | Crossref | Medline42. Austarheim, I, Pham, AT, Nguyen, C, et al. Antiplasmodial, anti-complement and anti-inflammatory in vitro effects of Biophytum umbraculum welw. Traditionally used against cerebral malaria in Mali. J Ethnopharmacol. 2016;190:159-164.
Google Scholar | Crossref | Medline43. Shen, C-Y, Jiang, J-G, Huang, C-L, Zhu, W, Zheng, C-Y. Polyphenols from blossoms of Citrus aurantium L. var. amara engl. Show significant anti-complement and anti-inflammatory effects. J Agric Food Chem. 2017;65(41):9061-9068.
Google Scholar | Crossref | Medline44. Patil, A, Kakde, M. Medicinal plant as a natural immunity booster for COVID-19—a review. Ind J Integr Med. 2020; 2(2):24-27.
Google Scholar45. Berardi, A, Perinelli, DR, Merchant, HA, et al. Hand sanitisers amid COVID-19: a critical review of alcohol-based products on the market and formulation approaches to respond to increasing demand. Int J Pharm. 2020; 584:119431.
Google Scholar | Crossref | Medline46. Mpiana, PT, Tshibangu, DS, Kilembe, JT, et al. Aloe vera (L.) Burm. F. as a potential anti-COVID-19 plant: a mini-review of Its antiviral activity. Eur J Med Plants. 2020;31(8):86-93.
Google Scholar47. Boopathi, S, Poma, AB, Kolandaivel, P. Novel 2019 coronavirus structure, mechanism of action, antiviral drug promises and rule out against its treatment. J Biomol Struct Dyn. 2020;39(9): 3409-3418
Google Scholar | Crossref | Medline48. Babadaei, MMN, Hasan, A, Bloukh, SH, et al. The expression level of angiotensin-converting enzyme 2 determines the severity of COVID-19: lung and heart tissue as targets. J Biomol Struct Dyn. 2020;39(10):3780-3786.
Google Scholar49. Bekhechi, C, Boti, JB, Bekkara, FA, Abdelouahid, DE, Casanova, J, Tomi, F. Isothymol in Ajowan essential oil. Nat Prod Commun. 2010;5(7):1107-1110.
Google Scholar | Medline50. Koshak, DAE, Koshak, PEA. Nigella sativa L as a potential phytotherapy for coronavirus disease 2019: a mini review of in silico studies. Curr Ther Res Clin Exp. 2020;93:100602.
Google Scholar | Crossref | Medline51. Boozari, M, Hosseinzadeh, H. Natural products for COVID-19 prevention and treatment regarding to previous coronavirus infections and novel studies. Phytother Res. 2020; 35(2):864-876.
Google Scholar52. Wach, A, Biesaga, M. Quercetin content in some food and herbal samples. Food Chem. 2007;100(2):699-704.
Google Scholar | Crossref53. Williamson, G, Kerimi, A. Testing of natural products in clinical trials targeting the SARS-CoV-2 (COVID-19) viral spike protein-angiotensin converting enzyme-2 (ACE2) interaction. Biochem Pharmacol. 2020;178:114123.
Google Scholar | Crossref | Medline54. Antonio, AdS, Wiedemann, LSM, Veiga-Junior, VF. Natural products’ role against COVID-19. RSC Adv. 2020;10(39):23379-23393.
Google Scholar | Crossref55. Zhou, N, Pan, T, Zhang, J, et al. Glycopeptide antibiotics potently inhibit cathepsin L in the late endosome/lysosome and block the entry of Ebola virus, Middle East respiratory syndrome coronavirus (MERS-CoV), and severe acute respiratory syndrome coronavirus (SARS-CoV). J Biol Chem. 2016;291(17):9218-9232.
Google Scholar | Crossref | Medline56. Vivek-Ananth, RP, Rana, A, Rajan, N. In silico identification of potential natural product inhibitors of human proteases key to SARS-CoV-2 infection. Molecules. 2020;25(17):3822.
Google Scholar | Crossref57. Leung, P-C . The efficacy of Chinese medicine for SARS: a review of Chinese publications after the crisis. Am J Chin Med. 2007;35(4):575-581.
Google Scholar | Crossref | Medline58. Li, S-Y, Chen, C, Zhang, H-Q, et al. Identification of natural compounds with antiviral activities against SARS-associated coronavirus. Antiviral Res. 2005;67(1):18-23.
Google Scholar | Crossref | Medline

留言 (0)

沒有登入
gif