Decoupling soil community structure, functional composition, and nitrogen metabolic activity driven by salinity in coastal wetlands

IF 9.8 1区 农林科学 Q1 SOIL SCIENCE
Mingcong Li , Wenxi Zhou , Mengyue Sun , Wenchong Shi , Jiaqi Lun , Bo Zhou , Lijun Hou , Zheng Gao
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Abstract

Coastal wetlands, being a multifaceted and crucial global ecosystem, are facing significant impacts from diverse environmental alterations, particularly soil salinization. Concurrently, the escalation of extreme climate events, such as global warming, presents complex challenges for the protection and restoration efforts. Previous researches concerning microbial communities in the context of climate with continous line numbering change have predominantly concentrated on their structural aspects, with limited attention given to establishing relationships between community structure and functional attributes. In this study, a two-year investigation was conducted on conventional coastal wetland ecosystems, considering variations in salinity and seasonal temperature. Utilizing high-throughput 16S rRNA sequencing, isotope technology, and other methods to explore the bacterial community, nitrogen cycling functional groups, and nitrogen reduction process. This research aims to assess the holistic impacts of significant global environmental changes on microbial communities. The results suggest that salinity, acting as an environmental filter, has a significant impact on the microbial community composition. It leads to a decrease in species abundance, an increase in deterministic processes and the nesting of community succession, while also reducing the stability of microbial ecological networks. The mechanism by which soil salinity impacts bacterial communities involves three main aspects: direct effects, positive climate regulation, and negative regulation of soil properties. Surprisingly, soil salinity exerts a mild inhibitory influence on microbial functional genes and metabolic activity. The primary factors involved in the nitrogen reduction process include electron donors/acceptors, types of nitrogen sources, and organic carbon. The three processes are interconnected due to the impact of environmental factors and signal transmission among microbial populations. This study offers a novel scientific framework for the rehabilitation and enhancement of saline-alkali coastal ecosystems in the face of impending global changes. It achieves this by investigating the varied response patterns exhibited by microbial communities and ecological functional metabolism under salinity-induced stress.

Abstract Image

将沿海湿地土壤群落结构、功能组成和盐度驱动的氮代谢活动脱钩
沿海湿地是一个多方面的重要全球生态系统,正面临着各种环境变化,特别是土壤盐碱化带来的重大影响。与此同时,极端气候事件(如全球变暖)的升级也给保护和恢复工作带来了复杂的挑战。以往关于气候持续线性变化背景下微生物群落的研究主要集中在其结构方面,对建立群落结构与功能属性之间的关系关注有限。本研究对传统的沿海湿地生态系统进行了为期两年的调查,考虑了盐度和季节性温度的变化。利用高通量 16S rRNA 测序、同位素技术和其他方法探索细菌群落、氮循环功能群和氮还原过程。这项研究旨在评估全球重大环境变化对微生物群落的整体影响。结果表明,盐度作为一种环境过滤器,对微生物群落的组成有重大影响。它导致物种丰度下降、确定性过程增加和群落演替嵌套,同时也降低了微生物生态网络的稳定性。土壤盐分对细菌群落的影响机制主要包括三个方面:直接影响、气候的正向调节和土壤性质的负向调节。令人惊讶的是,土壤盐分对微生物功能基因和代谢活动有轻微的抑制作用。氮还原过程涉及的主要因素包括电子供体/受体、氮源类型和有机碳。由于环境因素的影响和微生物种群之间的信号传递,这三个过程是相互关联的。面对即将到来的全球变化,这项研究为恢复和改善盐碱海岸生态系统提供了一个新的科学框架。为此,它研究了微生物群落和生态功能代谢在盐碱压力下表现出的不同反应模式。
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来源期刊
Soil Biology & Biochemistry
Soil Biology & Biochemistry 农林科学-土壤科学
CiteScore
16.90
自引率
9.30%
发文量
312
审稿时长
49 days
期刊介绍: Soil Biology & Biochemistry publishes original research articles of international significance focusing on biological processes in soil and their applications to soil and environmental quality. Major topics include the ecology and biochemical processes of soil organisms, their effects on the environment, and interactions with plants. The journal also welcomes state-of-the-art reviews and discussions on contemporary research in soil biology and biochemistry.
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