Drought shifts soil nematode trophic groups and mediates the heterotrophic respiration

Author:

Zhao Cancan12ORCID,Shao Yuanhu234,Lu Huijie12,Classen Aimée T5,Wang Zuyan6,Li Ying7,Liu Yanchun12,Yang Zhongling12ORCID,Li Guoyong12ORCID,Fu Shenglei234

Affiliation:

1. International Joint Research Laboratory for Global Change Ecology, School of Life Sciences, Henan University , Kaifeng 475004 , China

2. Henan Dabieshan National Field Observation and Research Station of Forest Ecosystem , Zhengzhou 450046 , China

3. Key Laboratory of Geospatial Technology for the Middle and Lower Yellow River Regions, Ministry of Education, College of Environment and Planning, Henan University , Kaifeng 475004 , China

4. Henan Key Laboratory of Integrated Air Pollution Control and Ecological Security , Kaifeng 475004 , China

5. Department of Ecology and Evolutionary Biology, University of Michigan , Ann Arbor, MI 48109 , USA

6. South China Botanical Garden, Chinese Academy of Sciences , Guangzhou 510650 , China

7. Department of Natural Resource of Henan Province, Institute of Natural Resources Survey and Planning , Zhengzhou 450000 , China

Abstract

Abstract As the most diverse metazoan taxa, soil nematodes serve a diversity of functions in soil food webs and thus can regulate microbial community composition and affect organic matter decomposition and nutrient turnover rates. Because nematodes depend on water films to access food resources, drought can negatively affect nematode–microbial food webs, yet the impacts of drought on nematode diversity and abundance and how these changes may influence food web members and their functions are hardly explored. Here, we coupled research along a drought gradient in arid and semiarid grasslands with a detailed intact plant–soil microcosm experiment to explore the patterns and mechanisms of how drought impacts nematode abundance and carbon footprint, microbial phospholipid fatty acid (PLFA) and heterotrophic soil respiration. Overall, in the field and the microcosm experiments, we found that nematode abundance, carbon footprint and diversity, microbial PLFA and heterotrophic respiration were reduced under drier conditions. In addition, drought altered nematode and microbial community composition, through reducing the nematode channel ratio and increasing the relative fungivorous nematode abundance and the fungal to bacterial ratio. The soil decomposition channel shifted from a bacterial to a fungal pathway in response to drought, indicating decelerated heterotrophic respiration under drought. These results highlight the important contribution of soil nematodes and their associated microbial food web to soil carbon cycling. Our findings underscore the need to incorporate key soil fauna into terrestrial ecosystem model evaluation.

Funder

National Natural Science Foundation of China

Natural Science Foundation of Henan Province

Xinyang Academy of Ecological Research Open Foundation

Publisher

Oxford University Press (OUP)

Cited by 1 articles. 订阅此论文施引文献 订阅此论文施引文献,注册后可以免费订阅5篇论文的施引文献,订阅后可以查看论文全部施引文献

1. PHYTOPARASITIC NEMATODES OF THREE ENEGRY CROPS FOR BIOFUEL PRODUCTION;Biological Systems: Theory and Innovation;2024

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