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Dominant influence of plants on soil microbial carbon cycling functions during natural restoration of degraded karst vegetation

自行车 碳循环 营养循环 放线菌门 微生物种群生物学 土壤碳 环境科学 基因组 恢复生态学 植被(病理学) 微生物 生态学 土壤水分 生物 营养物 土壤科学 生态系统 林业 地理 细菌 医学 生物化学 遗传学 16S核糖体RNA 病理 基因
作者
Shasha Wang,Danmei Chen,Qingfu Liu,Lipeng Zang,Guangqi Zhang,Mingzhen Sui,Yu Dai,Chunjie Zhou,Yujuan Li,Yousu Yang,Fangjun Ding
出处
期刊:Journal of Environmental Management [Elsevier]
卷期号:345: 118889-118889 被引量:19
标识
DOI:10.1016/j.jenvman.2023.118889
摘要

The impacts of natural restoration projects on soil microbial carbon (C) cycling functions have not been well recognized despite their wide implementation in the degraded karst areas of southwest China. In this study, metagenomic sequencing assays were conducted on functional genes and microorganisms related to soil C-cycling at three natural restoration stages (shrubbery, TG; secondary forest, SG; old-growth forest, OG) in the southeast of Guizhou Province, China. The aims were to investigate the changes in microbial potentials responsible for soil C cycling and the underlying driving forces. The natural restoration resulted in vegetation establishment at all three restoration stages, rendering alterations of soil microbial C cycle functions as indicated by metagenomic gene assays. When TG was restored into OG, the number and diversity of genes and microorganisms involved in soil C cycling remained unchanged, but their composition underwent significant shifts. Specifically, microbial potentials for soil C decomposition exhibited an increase driven by the collaborative efforts of plants and soils, while microbial potentials for soil C biosynthesis displayed an initial upswing followed by a subsequent decline which was primarily influenced by plants alone. In comparison to soil nutrients, it was determined that plant diversities served as the primary driving factor for the alterations in microbial carbon cycle potentials. Soil microbial communities involved in C cycling were predominantly attributed to Proteobacteria (31.87%-40.25%) and Actinobacteria (11.29%-26.07%), although their contributions varied across the three restoration stages. The natural restoration of degraded karst vegetation thus influences soil microbial C cycle functions by enhancing C decomposition potentials and displaying a nuanced pattern of biosynthesis potentials, primarily influenced by above-ground plants. These results provide valuable new insights into the regulation of soil C cycling during the restoration of degraded karst vegetation from genetic and microbial perspectives.
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