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蛹虫草发酵条件的优化及蛹虫草苷抗植物病原菌的计算机模拟分析。

Optimization of Fermentation Conditions of Cordyceps militaris and In Silico Analysis of Antifungal Property of Cordycepin Against Plant Pathogens.

机构信息

Department of Plant Biotechnology, University of Agricultural Sciences, GKVK, Bengaluru, India.

Centre for Biotechnology (CeBiTec), Faculty of Biology, Bielefeld University, Bielefeld, Germany.

出版信息

J Basic Microbiol. 2024 Oct;64(10):e2400409. doi: 10.1002/jobm.202400409. Epub 2024 Aug 29.

DOI:10.1002/jobm.202400409
PMID:39210579
Abstract

Cordyceps militaris, a medicinal fungus, has gained considerable attention owing to its potential health benefits, notably the production of bioactive compounds such as cordycepin. Cordycepin possesses significant antifungal, antibacterial, and antiviral properties. The present study focused on optimizing the fermentation conditions for C. militaris to boost the production of mycelia and cordycepin, alongside investigating its antifungal properties using in silico and in vitro approaches. The optimal conditions, yielding the highest cordycepin and mycelial biomass, were a temperature of 20°C and a pH range of 4-6, with glucose and sucrose as carbon sources and yeast extract and casein hydrolysate as nitrogen sources. Under these conditions, cordycepin production peaked at low pH (600-1000 mg/L) and with carbon and maltose (400-500 mg/L). The low temperature favored cordycepin production (400 mg/L), whereas casein hydrolysate as a nitrogen source boosted cordycepin yield (600 mg/L). The docking analysis indicated that cordycepin had the highest binding affinity for the tubulin beta chain 2 (-10.4 kcal/mol) compared to the fungicide tebuconazole (-7.9 kcal/mol for both targets). The in silico results were corroborated by in vitro studies, where the mycelial extract of C. militaris inhibited approximately 75% of fungal growth at a concentration of 6000 ppm. These findings suggest that optimizing fermentation conditions significantly enhances cordycepin production, and cordycepin shows antifungal solid activity, making it a promising agent for biocontrol in agriculture.

摘要

蛹虫草是一种药用真菌,由于其潜在的健康益处而备受关注,特别是其能够产生虫草素等生物活性化合物。虫草素具有显著的抗真菌、抗菌和抗病毒特性。本研究旨在通过计算机模拟和体外方法优化蛹虫草的发酵条件,以提高菌丝体和虫草素的产量,并研究其抗真菌特性。优化条件为温度 20°C,pH 值 4-6,葡萄糖和蔗糖作为碳源,酵母提取物和水解酪蛋白作为氮源,在此条件下,虫草素和菌丝体生物量的产量最高。在低 pH 值(600-1000mg/L)和碳源麦芽糖(400-500mg/L)条件下,虫草素产量最高。低温有利于虫草素的产生(400mg/L),而水解酪蛋白作为氮源则提高了虫草素的产量(600mg/L)。对接分析表明,与杀菌剂戊唑醇(两种靶标均为-7.9kcal/mol)相比,虫草素与微管蛋白 beta 链 2 的结合亲和力最高(-10.4kcal/mol)。计算机模拟结果通过体外研究得到了证实,蛹虫草的菌丝体提取物在 6000ppm 浓度下抑制了约 75%的真菌生长。这些发现表明,优化发酵条件可显著提高虫草素的产量,且虫草素具有抗真菌活性,有望成为农业生物防治的一种有前途的药剂。

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