Aridity shapes distinct biogeographic and assembly patterns of forest soil bacterial and fungal communities at the regional scale

干旱 生态学 生态系统 生物扩散 干旱指数 酸杆菌 生物 群落结构 丰度(生态学) 环境科学 放线菌门 人口 遗传学 人口学 16S核糖体RNA 社会学 细菌
作者
Xing Wang,Jia Zeng,Fang Chen,Zhengchen Wang,Hanyu Liu,Qi Zhang,Weichao Liu,Jiahao Sun,Jing Wang,Y. Niu,Linshan Yuan,Chengjie Ren,Gaihe Yang,Zekun Zhong,Xinhui Han
出处
期刊:Science of The Total Environment [Elsevier]
卷期号:948: 174812-174812
标识
DOI:10.1016/j.scitotenv.2024.174812
摘要

Climate change is exacerbating drought in arid and semi-arid forest ecosystems worldwide. Soil microorganisms play a key role in supporting forest ecosystem services, yet their response to changes in aridity remains poorly understood. We present results from a study of 84 forests at four south-to-north Loess Plateau sites to assess how increases in aridity level (1- precipitation/evapotranspiration) shapes soil bacterial and fungal diversity and community stability by influencing community assembly. We showed that soil bacterial diversity underwent a significant downward trend at aridity levels >0.39, while fungal diversity decreased significantly at aridity levels >0.62. In addition, the relative abundance of Actinobacteria and Ascomycota increased with higher aridity level, while the relative abundance of Acidobacteria and Basidiomycota showed the opposite trend. Bacterial communities also exhibited higher similarity-distance decay rates across geographic and environmental gradients than did fungal communities. Phylogenetic bin-based community assembly analysis revealed homogeneous selection and dispersal limitation as the two dominant processes in bacterial and fungal assembly. Dispersal limitation of bacterial communities monotonically increased with aridity levels, whereas homogeneous selection of fungal communities monotonically decreased. Importantly, aridity also increased the sensitivity of microbial communities to environmental disturbance and potentially decreased community stability, as evidenced by greater community similarity-environmental distance decay rates, narrower habitat niche breadth, and lower microbial network stability. Our study provides new insights into soil microbial drought response, with implications on the sustainability of ecosystems under environmental stress.
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