404
Views
1
CrossRef citations to date
0
Altmetric
ORIGINAL RESEARCH

Bioassay-Guided Phytochemical Analyses and Antimicrobial Potentials of the Leaf Extract of Clematis hirsuta Perr. and Guill. Against Some Pathogenic Bacteria and Fungi

, ORCID Icon, &
Pages 6577-6588 | Received 13 Sep 2022, Accepted 05 Nov 2022, Published online: 10 Nov 2022

References

  • Murray CJ, Aravkin AY, Zheng P., et al. Global burden of 87 risk factors in 204 countries and territories, 1990–2019: a systematic analysis for the Global Burden of Disease Study 2019. Lancet. 2020;396(10258):1223–1249.
  • WHO. Antimicrobial resistance. WHO Fact sheet; 2021. Available from: https://www.who.int/news-room/fact-sheets/detail/antimicrobial-resistance. Accessed Feb 01, 2022.
  • LeDuc JW. World Health Organization strategy for emerging infectious diseases. JAMA. 1996;275(4):318–320. doi:10.1001/jama.1996.03530280070040
  • Zaman SB, Hussain MA, Nye R, Mehta V, Mamun KT, Hossain N. A review on antibiotic resistance: alarm bells are ringing. Cureus. 2017;9(6):e1403. doi:10.7759/cureus.1403
  • Saleem M, Nazir M, Ali MS, et al. Antimicrobial natural products: an update on future antibiotic drug candidates. Nat Prod Rep. 2010;27(2):238–254. doi:10.1039/B916096E
  • Wright GD. Opportunities for natural products in 21st century antibiotic discovery. Nat Prod Rep. 2017;34(7):694–701. doi:10.1039/C7NP00019G
  • Bicanic T, Bottomley C, Loyse A, et al. Toxicity of amphotericin B deoxycholate-based induction therapy in patients with HIV-associated cryptococcal meningitis. Antimicrob Agents Chemother. 2015;59(12):7224–7231. doi:10.1128/AAC.01698-15
  • Morales-Alvarez MC. Nephrotoxicity of antimicrobials and antibiotics. Adv Chronic Kidney Dis. 2020;27(1):31–37. doi:10.1053/j.ackd.2019.08.001
  • Ancheeva E, Daletos G, Proksch P. Bioactive secondary metabolites from endophytic fungi. Curr Med Chem. 2020;27(11):1836–1854. doi:10.2174/0929867326666190916144709
  • Sohn SI, Rathinapriya P, Balaji S, et al. Phytosterols in seaweeds: an overview on biosynthesis to biomedical applications. Int J Mol Sci. 2021;22(23):12691. doi:10.3390/ijms222312691
  • Shen J, Hu M, Tan W, et al. Traditional uses, phytochemistry, pharmacology, and toxicology of Coreopsis tinctoria Nutt. J Ethnopharmacol. 2021;6(269):113690. doi:10.1016/j.jep.2020.113690
  • Rabia A, Taher A, Ahmed I, Esra Z. Bioactive properties of some selected Libyan plants. J Med Plants Res. 2016;10(6):67–76. doi:10.5897/JMPR2015.5955
  • Puupponen-Pimiä R, Nohynek L, Alakomi HL, Oksman-Caldentey KM. Bioactive berry compounds—novel tools against human pathogens. Appl Microbiol Biotechnol. 2005;67(1):8–18. doi:10.1007/s00253-004-1817-x
  • Roy R, Tiwari M, Donelli G, Tiwari V. Strategies for combating bacterial biofilms: a focus on anti-biofilm agents and their mechanisms of action. Virulence. 2019;9(1):522–554. doi:10.1080/21505594.2017.;1313372
  • Yebirzaf Y, Esubalew T, Workinesh T. The dynamics of medicinal plants utilisation practice nexus its health and economic role in Ethiopia: a review paper. Int J Biodiversity Conservation. 2019;11(1):31–47. doi:10.5897/IJBC2018.1201
  • Mengistu M, Kebede D, Atomsa D, Abebe A, Alemnie D. Status and utilisation of medicinal and aromatic plants in Eastern Hararghe, Ethiopia. Cogent Food Agriculture. 2019;5(1):1701349. doi:10.1080/23311932.2019.1701349
  • Aragaw TJ, Afework DT, Getahun KA. Assessment of knowledge, attitude, and utilisation of traditional medicine among the communities of Debre Tabor Town, Amhara Regional State, North Central Ethiopia: a cross-sectional study. Evid Based Complementary Alternative Med. 2020;10:458.
  • Mesfin F, Demissew S, Teklehaymanot T. An ethnobotanical study of medicinal plants in Wonago Woreda, SNNPR, Ethiopia. J Ethnobiol Ethnomed. 2009;5(1):1–8. doi:10.1186/1746-4269-5-28
  • Gonfa N, Tulu D, Hundera K, Raga D. Ethnobotanical study of medicinal plants, its utilisation, and conservation by indigenous people of Gera district, Ethiopia. Cogent Food Agriculture. 2020;6(1):1852716. doi:10.1080/23311932.2020.1852716
  • Seid MA, Aydagnehum SG. Medicinal plants biodiversity and local healthcare management system in Chencha district; Gamo Gofa, Ethiopia. J Pharmacognosy Phytochemistry. 2013;2(1):845.
  • Nuru A, Hepburn HR Pollen grains of some poisonous bee plants of Ethiopia. In the 37th International Apiculture Congress, Durban, South Africa 2001 Oct.
  • Raimondo D, Von Staden L, Foden W, et al. National Assessment: Red List of South African Plants, Version 2015.1. Pretoria, South Africa: South African National Biodiversity Institute; 2015.
  • Limenih Y, Umer S, Wolde-Mariam M. Ethnobotanical study on traditional medicinal plants in Dega Damot woreda, Amhara Region, North Ethiopia. Int J Res Pharm Chem. 2015;5(2):258–273.
  • Pieroni A, Quave CL, Santoro RF. Folk pharmaceutical knowledge in the territory of the Dolomiti Lucane, inland southern Italy. J Ethnopharmacol. 2004;95(2–3):373–384. doi:10.1016/j.jep.2004.08.012
  • Loi MC, Poli F, Sacchetti G, Selenu MB, Ballero M. Ethnopharmacology of ogliastra (villagrande strisaili, Sardinia, Italy). Fitoterapia. 2004;75(3–4):277–295. doi:10.1016/j.fitote.2004.01.008
  • Cantrell CL, Fischer NH, Urbatsch L, McGuire MS, Franzblau SG. Antimycobacterial crude plant extracts from South, Central, and North America. Phytomedicine. 1998;5(2):137–145. doi:10.1016/S0944-7113(98)80011-1
  • Handa SS, Khanuja SP, Longo G, Rakesh DD. Extraction Technologies for Medicinal and Aromatic Plants, No. 66. Italy: United Nations Industrial Development Organization and the International Centre for Science and High Technology. Trieste; 2008:21–25.
  • Jigna P, Rathish N, Sumitra C. Preliminary screening of some folklore medicinal plants from western India for potential antimicrobial activity. Indian J Pharmacol. 2005;37(6):408–409. doi:10.4103/0253-7613.19085
  • Salie F, Eagles PF, Leng HM. Preliminary antimicrobial screening of four South African Asteraceae species. J Ethnopharmacol. 1996;52(1):27–33. doi:10.1016/0378-8741(96)01381-5
  • Liu JW, Ko WC, Huang CH, et al. Agreement assessment of tigecycline susceptibilities determined by the disk diffusion and broth microdilution methods among commonly encountered resistant bacterial isolates: results from the Tigecycline In Vitro Surveillance in Taiwan (TIST) study, 2008 to 2010. Antimicrob Agents Chemother. 2012;56(3):1414–1417. doi:10.1128/AAC.05879-11
  • Ameya G, Manilal A, Idhayadhulla A. Phytochemical analysis and antimicrobial activity of bersama abyssinica fresen against multidrug-resistant bacterial uropathogens: picolinyl hydrazide is a major compound. J Herbs Spices Med Plants. 2019;25(4):389–400. doi:10.1080/10496475.2019.1635940
  • Ameya G, Manilal A, Merdekios B. In vitro antibacterial activity and phytochemical analysis of Nicotiana tabacum L. extracted in different organic solvents. Open Microbiol J. 2017;11(1):352–359. doi:10.2174/1874285801711010352
  • Manilal A, Sabu KR, Shewangizaw M, et al. In vitro antibacterial activity of medicinal plants against biofilm-forming methicillin-resistant Staphylococcus aureus: efficacy of Moringa stenopetala and Rosmarinus officinalis extracts. Heliyon. 2020;6(1):e03303. doi:10.1016/j.heliyon.2020.e03303
  • Ameya G, Gure A, Dessalegn E. Antimicrobial activity of Echinops kebericho against human pathogenic bacteria and fungi. Afr J Tradit Complement Altern Med. 2016;13(6):199–203. doi:10.21010/ajtcam.v13i6.29
  • Asmamaw H, Yalemtsehay M. Antibacterial potential of the 80% methanol and chloroform extracts of Clematis hirsuta. Af j Pharmacy Pharmacol. 2017;11(16):204–208.
  • Al-Taweel AM Phytochemical and biological studies of some Clematis species growing in Saudi Arabia (Doctoral dissertation, PhD Thesis, King Saud University, College of Pharmacy, King Abdulaziz City, Saudi Arabia).
  • Miret-Casals L, Baelo A, Julián E, et al. Hydroxylamine derivatives as a new paradigm in the search of antibacterial agents. ACS omega. 2018;3(12):17057–17069. doi:10.1021/acsomega.8b01384
  • Duke J, Dr A Duke’s phytochemical and ethnobotanical database. Available from: https://phytochem.nal.usda.gov/phytochem/search. Accessed November 7, 2022.
  • Bouchereau A, Guénot P, Larher F. Analysis of amines in plant materials. J Chromatogr B Biomed Sci Appl. 2000;747(1–2):49–67. doi:10.1016/S0378-4347(00)00286-3
  • Huang CB, Alimova Y, Myers TM, Ebersole JL. Short-and medium-chain fatty acids exhibit antimicrobial activity for oral microorganisms. Arch Oral Biol. 2011;56(7):650–654. doi:10.1016/j.archoralbio.2011.01.011
  • ElZanaty SA, Seif Eldein NA, ElGebaly EA, ElGhaly EM, ElGizawy HA. Chemical composition and antimicrobial activity of the essential oils of Thevetia peruviana and Plumeria rubra cultivated in Egypt. Azhar Int J Pharmaceutical Med Sci. 2022;2(2):34–42.
  • Sulaimon LA, Anise EO, Obuotor EM, et al. In vitro antidiabetic potentials, antioxidant activities and phytochemical profile of African black pepper (Piper guineense). Clinical Phytosci. 2020;6(1):1–3. doi:10.1186/s40816-020-00236-2
  • de Oliveira-Júnior RG, Ferraz CA, de Oliveira AP, et al. Chemical constituents of non-polar fractions obtained from Cnidoscolus quercifolius Pohl (Euphorbiaceae), a Brazilian medicinal plant native to Caatinga biome Chemical constituents of non-polar fractions obtained from Cnidoscolus quercifolius Pohl (Euphorbiaceae), a Brazilian medicinal plant native to Caatinga biome. Revista Virtual de Química. 2019;11(2):498–516.
  • Figueiredo AC, Barroso JG, Pedro LG, Scheffer JJ. Factors affecting secondary metabolite production in plants: volatile components and essential oils. Flavour Fragrance j. 2008;23(4):213–226. doi:10.1002/ffj.1875
  • Gobezie S, Manilal A, Seid M, Lulekal E, Tsegaye Y. In vitro antibacterial activity of four plant species used in traditional medicine practices of south Omo zone, southern Ethiopia. Acta Microbioloica Hellenica. 2020;65(2):2020.
  • Manilal A, Sabu KR, Woldemariam M, et al. Antibacterial activity of Rosmarinus officinalis against multidrug-resistant clinical isolates and meat-borne pathogens. Evid Based Complementary Alternative Med. 2021. Apr;29:548.
  • Bos S, Gadea G, Despres P. Dengue: a growing threat requiring vaccine development for disease prevention. Pathog Glob Health. 2018;112:294–305. doi:10.1080/20477724.2018.1514136
  • Russo G, Subissi L, Rezza G. Chikungunya fever in Africa: a systematic review. Pathogens and Global Health. 2020;114(3):111–119. doi:10.1080/20477724.2020.1748965
  • Sharma V, Kaushik S, Kumar R, Yadav JP, Kaushik S. Emerging trends of Nipah virus: a review Pathog Glob Health. Int J Med. 2020;114:111–119.
  • Sharma V, Sharma M, Dhull D, Sharma Y, Kaushik S, Kaushik S. Zika virus: an emerging challenge to public health worldwide. Can J Microbiol. 2020;66(2):87–98. doi:10.1139/cjm-2019-0331
  • Kaushik S, Kaushik S, Sharma Y, Kumar R, Yadav JP. The Indian perspective of COVID-19 outbreak. Virus Dis. 2020;4:1–8.
  • Vachirayonstien T, Promkhatkaew D, Bunjob M, Chueyprom A, Chavalittumrong P, Sawanpanyalert P. Molecular evaluation of extracellular activity of medicinal herb Clinacanthus nutans against herpes simplex virus type-2. Nat Prod Res. 2010;24:236–245. doi:10.1080/14786410802393548
  • Kaushik S, Dar L, Kaushik S, Yadav JP. Identification and characterization of new potent inhibitors of dengue virus NS5 proteinase from Andrographis paniculata supercritical extracts on in animal cell culture and in silico approaches. J Ethnopharmacol. 2020;267:113541. doi:10.1016/j.jep.2020.113541