Parental material and climate jointly determine the biomass and diversity of soil microbial communities along an elevational gradient on a subtropical karst mountain

喀斯特 亚热带 生物量(生态学) 生态学 多样性(政治) 环境科学 地理 农林复合经营 生物 人类学 社会学 考古
作者
Xianjin He,Lian Zeng,Guangyu Zhu,M. D. Farnon Ellwood,Lihua Zhou,Junlong Huang,Chenchen Wang,Wei Li,Dunmei Lin,Pei Wei,Shijun Liu,Min Luo,Yonghua Zhang,Yongchuan Yang
出处
期刊:Journal of Biogeography [Wiley]
卷期号:51 (7): 1185-1198 被引量:4
标识
DOI:10.1111/jbi.14814
摘要

Abstract Aim Climate is widely understood to determine elevational patterns of soil microbial communities, whereas the effects of parental material are uncertain. Changes in the composition of parental materials along elevational transects could also affect soil microbial communities by influencing soil pH and nutrient availability. Here, we aim to illustrate the combined effects of climate and parental material on the biomass and composition of soil microbial communities along an elevational transect. Location A subtropical forest on a karst mountain (Mt. Jinfo), China. Taxon Bacteria and Fungi. Methods We use phospholipid fatty acid analysis (PLFA) and DNA amplicon high‐throughput sequencing to determine biomass and diversity patterns of soil microbial communities along a subtropical elevational gradient with contrasting parental materials (limestone and clasolite). Results We observed that the microbial communities were more diverse (α‐diversity) and productive (biomass) on limestone than on clasolite. Additionally, we found that parental material played a role in shaping the composition (β‐diversity) of soil microbial communities along the elevational gradient. The impact of climate on soil microbial communities was found to be significant, albeit relatively weak. Structural equation models provided evidence for both direct and indirect effects of climate and parental material on microbial biomass and α‐diversity along the elevational gradient. Notably, the changes in soil pH, influenced by both parental material and climate, were identified as a key factor driving these effects. Main Conclusions Our results underline the importance of both climate and parental material variations in space‐for‐time studies investigating soil microbial communities along elevational gradients.
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