Enzyme Urease Activity and Phytochemical Investigation of the Leaves of Baissea Mortehanii (Apocynaceae)

Ngah Lidwine, Essombe Malolo Fanny-Aimee, Ngo Nyobe Biwole Caroline, Nko’o Henri Julien, W. D. T. Tsopgni, E. Gisèle, J. Wansi, Kamdem Waffo, Ndom Jean Claude, M. Emmanuel
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Abstract

The phytochemical investigation of a previously unstudied species of the genus Apocynaceae, Baissea mortehanii de Wild was undertaken and eight known secondary metabolites were isolated from leaves of this plant including one alkaloid, N-Feruloyltryptamine (1); one aromatic ester, Dibutyl phthalate (2); two flavonoids, Genistein (3) and Gerontoisoflavone A (4), four sterols, β-Sitosterol (5), Sitosterol-3-O-β-D-glucopyranoside (6), Stigmasterol (7) and Stigmasterol-3-O-β-D glucopyranoside (8). The structures of compounds were determined by means of spectroscopic methods :NMR analysis (1H and13C NMR, 1H-1H-COSY, HSQC, HMBC), spectrometric methods such as UV, IR, ESI-MS, EI, and by comparing their data with those reported in the literature. All the isolated compounds were tested for their potential to inhibit the enzyme urease. Urease activity was determined by measuring ammonia production using the indophenol method and thiourea was used as standard inhibitor of urease. Compounds 5 and 7 showed the best urease inhibition with an IC50 value 17. 2 and 18.5 µM respectively, which is higher than that of the potent inhibitor, thiourea (IC50 = 21.5 µM); Compounds 3, 4, 6 and 8 showed a good urease inhibition with an IC50 value 26.9, 29.7, 32.8 and 34.3 µM respectively; Compounds 1 and 2 showed a moderate urease inhibition with an IC50 value 49.1 and 46.8 µM respectively.
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白花蛇舌草叶的尿素酶活性和植物化学研究
研究人员对一种以前未研究过的 Apocynaceae 植物--Baissea mortehanii de Wild 进行了植物化学调查,并从该植物的叶片中分离出八种已知的次生代谢物,包括一种生物碱--N-阿魏酰色胺(1)、一种芳香酯--邻苯二甲酸二丁酯(2)、两种黄酮类化合物--染料木素(3)和Gerontoisoflavone A(4)、四种甾醇--β-甾醇(5)和β-甾醇(6);一种芳香酯,邻苯二甲酸二丁酯(2);两种黄酮类化合物,染料木素(3)和染料木黄酮 A(4);四种甾醇,β-谷甾醇(5)、谷甾醇-3-O-β-D-吡喃葡萄糖苷(6)、豆甾醇(7)和豆甾醇-3-O-β-D-吡喃葡萄糖苷(8)。化合物的结构是通过光谱方法:核磁共振分析(1H 和 13C NMR、1H-1H-COSY、HSQC、HMBC)、光谱方法(如 UV、IR、ESI-MS、EI)以及将其数据与文献报道的数据进行比较来确定的。测试了所有分离化合物抑制脲酶的潜力。采用靛酚法测定氨的产生,并以硫脲作为脲酶的标准抑制剂,从而确定脲酶的活性。化合物 5 和 7 对尿素酶的抑制效果最好,其 IC50 值分别为 17.2 和 18.5 µM,高于强效抑制剂硫脲(IC50 = 21.5 µM);化合物 3、4、6 和 8 显示出良好的脲酶抑制作用,IC50 值分别为 26.9、29.7、32.8 和 34.3 µM;化合物 1 和 2 显示出中等的脲酶抑制作用,IC50 值分别为 49.1 和 46.8 µM。
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