Antibacterial activities of three species of mangrove leaves extract against Staphylococcus aureus and Escherichia coli
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References
. Gaspari R, Spinazzola G, Teofili L, Avolio AW, Fiori B, Maresca GM, et al. Protective effect of SARS-CoV-2 preventive measures against ESKAPE and Escherichia coli infections. Eur J Clin Invest. 2021;51(12):e13687.
. Peng X, Zhou W, Zhu Y, Wan C. Epidemiology, risk factors and outcomes of bloodstream infection caused by ESKAPEEc pathogens among hospitalized children. BMC Pediatr. 2021;21:1–10.
. Catalano A, Iacopetta D, Ceramella J, Scumaci D, Giuzio F, Saturnino C, et al. Multidrug resistance (MDR): A widespread phenomenon in pharmacological therapies. Molecules. 2022;27(3):616.
. Mirzaei B, Bazgir ZN, Goli HR, Iranpour F, Mohammadi F, Babaei R. Prevalence of multidrug-resistant (MDR) and extensively drug-resistant (XDR) phenotypes of Pseudomonas aeruginosa and Acinetobacter baumannii isolated in clinical samples from Northeast of Iran. BMC Res Notes. 2020;13:1–6.
. Kurnianta PDM, Sari SW, Yanti SI, Alfianna W, Solihah R, Dari NPDRW, et al. PENGANTAR FARMAKOLOGI: Konsep dan Teori. PT. Sonpedia Publishing Indonesia; 2023.
. AlSheikh HM Al, Sultan I, Kumar V, Rather IA, Al-Sheikh H, Tasleem Jan A, et al. Plant-based phytochemicals as a possible alternative to antibiotics in combating bacterial drug resistance. Antibiotics. 2020;9(8):480.
. Saha M, Sarkar A. Review on multiple facets of drug resistance: a rising challenge in the 21st century. J xenobiotics. 2021;11(4):197–214.
. Heru R. Kondisi Ekowisata Mangrove Sungai Bersejarah di Masa Pandemi [Internet]. Mediacenter Riau. 2021 [cited 2023 Jun 2]. Available from: https://mediacenter.riau.go.id/read/63534/begini-kondisi-ekowisata-mangrove-sungai-bers.html
. Adriman, Fauzi M, Fajri N El, Purwanto E, Prianto E. Penyuluhan Konservasi Hutan Mangrove di Desa Mengkapan Kecamatan Sungai Apit Kabupaten Siak. J Rural Urban Community Empower. 2020;2(1 SE-):42–9.
. Direktorat Jenderal Pengelolaan Ruang laut. KONDISI MANGROVE DI INDONESIA [Internet]. Kementerian Kelautan dan Perikanan. 2021 [cited 2023 Jun 2]. Available from: https://kkp.go.id/djprl/p4k/page/4284-kondisi-mangrove-di-indonesia
. Mulyadi M, Wuryanti W, Sarjono PR. Konsentrasi Hambat Minimum (KHM) Kadar Sampel Alang-Alang (Imperata cylindrica) dalam Etanol Melalui Metode Difusi Cakram. J Kim Sains dan Apl. 2017;20(3):130–5. https://doi.org/10.14710/jksa.20.3.130-135
. Mairing PP, Ariantari NP. Review: Metabolit Sekunder dan Aktivitas Farmakologi Tanaman Mangrove Sonneratia alba. J Farm Udayana. 2022;11(1):1. https://doi.org/10.24843/jfu.2022.v11.i01.p01
. Alibi S, Crespo D, Navas J. Plant-derivatives small molecules with antibacterial activity. Antibiotics. 2021;10(3):231.
. Ding C-F, Qin X-J, Yu H-F, Liu Y-P, Wang X-H, Luo X-D. Thalicfoetine, a novel isoquinoline alkaloid with antibacterial activity from Thalictrum foetidum. Tetrahedron Lett. 2019;60(41):151135.
. Yan Y, Li X, Zhang C, Lv L, Gao B, Li M. Research progress on antibacterial activities and mechanisms of natural alkaloids: A review. Antibiotics. 2021;10(3). https://doi.org/10.3390/antibiotics10030318
. Dakheel MM, Alkandari FAH, Mueller-Harvey I, Woodward MJ, Rymer C. Antimicrobial in vitro activities of condensed tannin extracts on avian pathogenic Escherichia coli. Lett Appl Microbiol. 2020;70(3):165–72.
. Zhu C, Lei M, Andargie M, Zeng J, Li J. Antifungal activity and mechanism of action of tannic acid against Penicillium digitatum. Physiol Mol Plant Pathol. 2019;107:46–50.
. Kaczmarek B. Tannic acid with antiviral and antibacterial activity as a promising component of biomaterials-A minireview. Materials (Basel). 2020;13(14). https://doi.org/10.3390/ma13143224
. Å tumpf S, Hostnik G, PrimožiÄ M, Leitgeb M, Salminen JP, Bren U. The effect of growth medium strength on minimum inhibitory concentrations of tannins and tannin extracts against E. coli. Molecules. 2020;25(12):1–14. https://doi.org/10.3390/molecules25122947
. Farhadi F, Khameneh B, Iranshahi M, Iranshahy M. Antibacterial activity of flavonoids and their structure--activity relationship: An update review. Phyther Res. 2019;33(1):13–40.
. Adamczak A, Ożarowski M, Karpiński TM. Antibacterial activity of some flavonoids and organic acids widely distributed in plants. J Clin Med. 2019;9(1):109.
. Shamsudin NF, Ahmed QU, Mahmood S, Ali Shah SA, Khatib A, Mukhtar S, et al. Antibacterial effects of flavonoids and their structure-activity relationship study: A comparative interpretation. Molecules. 2022;27(4):1149.
. Donadio G, Mensitieri F, Santoro V, Parisi V, Bellone ML, De Tommasi N, et al. Interactions with microbial proteins driving the antibacterial activity of flavonoids. Pharmaceutics. 2021;13(5). https://doi.org/10.3390/pharmaceutics13050660