Environmental stress stimulates microbial activities as indicated by cyclopropane fatty acid enhancement

微生物种群生物学 土地复垦 湿地 微生物 生态学 微生物生态学 环境科学 营养物 生物 环境化学 化学 细菌 遗传学
作者
Xinhao Zhu,Ziyu Guo,Nannan Wang,Jianzhao Liu,Yunjiang Zuo,Kexin Li,Changchun Song,Yanyu Song,Chao Gong,Xiaofeng Xu,Fenghui Yuan,Lihua Zhang
出处
期刊:Science of The Total Environment [Elsevier]
卷期号:873: 162338-162338 被引量:2
标识
DOI:10.1016/j.scitotenv.2023.162338
摘要

Soil microbial responses to environmental stress remain a critical question in microbial ecology. The content of cyclopropane fatty acid (CFA) in cytomembrane has been widely used to evaluate environmental stress on microorganisms. Here, we used CFA to investigate the ecological suitability of microbial communities and found a stimulating impact of CFA on microbial activities during wetland reclamation in Sanjiang Plain, Northeastern China. The seasonality of environmental stress resulted in the fluctuation of CFA content in the soil, which suppressed microbial activities due to nutrient loss upon wetland reclamation. After land conversion, the aggravation of temperature stress to microbes increased the CFA content by 5 % (autumn) to 163 % (winter), which led to the suppression of microbial activities by 7 %-47 %. By contrast, the warmer soil temperature and permeability decreased the CFA content by 3 % to 41 % and consequently aggravated the microbial reduction by 15 %-72 % in spring and summer. Complex microbial communities of 1300 CFA-produced species were identified using a sequencing approach, suggesting that soil nutrients dominated the differentiation in these microbial community structures. Further analysis with structural equation modeling highlighted the important function of CFA content to environmental stress and the stimulating influence of CFA induced by environmental stress on microbial activities. Our study shows the biological mechanisms of seasonal CFA content for microbial adaption to environmental stress under wetland reclamation. It advances our knowledge of microbial physiology affecting soil element cycling caused by anthropogenic activities.
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