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Reduced soil multifunctionality and microbial network complexity in degraded and revegetated alpine meadows.

Authors :
Wu, Bobo
Ding, Mingjun
Zhang, Hua
Devlin, Adam Thomas
Wang, Peng
Chen, Lu
Zhang, Yueju
Xia, Yang
Wen, Jiawei
Liu, Linshan
Zhang, Yili
Wang, Minhuang
Source :
Journal of Environmental Management. Oct2023, Vol. 343, pN.PAG-N.PAG. 1p.
Publication Year :
2023

Abstract

Understanding how microbial processes develop and change in alpine meadow soils is key to global initiatives toward environmental sustainability and local land management. Yet, how microbial interactions mediate soil multifunctionality in disturbed and managed alpine meadows remains understudied. Here, we investigated multiple community metrics, particularly microbial network properties and assembly processes, of soil bacterial and fungal communities and their links to certain soil functions along a degradation-restoration sequence of alpine meadows in the Qinghai-Tibetan Plateau. Meadow degradation caused significant declines in soil hydraulic conductivity (e.g., higher bulk density, reduced soil porosity and water content) and nitrogen availability, leading to lowered soil multifunctionality. Meadow degradation only caused weak changes in microbial abundance, alpha diversity, and community composition, but remarkably reduced bacterial network complexity, to a less extent for fungal network properties. Short-term artificial restoration with productive grass monocultures did not restore soil multifunctionality, in turn even destabilized bacterial network and favored pathogenic over mutualistic fungi. Soil fungi community are more stable than bacteria in disturbed alpine meadows, and they evolved with distinct assembly strategies (stochastic-dominant versus deterministic-driven processes, respectively). Further, microbial network complexity, positively and better predicts soil multifunctionality than alpha diversity. Our work shows how microbial interaction complexity may enhance soil multifunctionality in degraded alpine meadow ecosystems, noting that meadow restoration with low plant species diversity may failed in restoring multiple ecosystem functions. These findings would help predict the outcomes of global environmental changes and inform management strategies in regional grassland conservation and restoration. [Display omitted] • Soil multifunctionality consistently reduced along the meadow developmental sequence. • Microbial diversity showed weak to no responses to meadow degradation/restoration. • Fungal network features responded less to meadow degradation/restoration than bacteria. • Revegetated grass monocultures failed to restore microbial network complexity. [ABSTRACT FROM AUTHOR]

Details

Language :
English
ISSN :
03014797
Volume :
343
Database :
Academic Search Index
Journal :
Journal of Environmental Management
Publication Type :
Academic Journal
Accession number :
164378911
Full Text :
https://doi.org/10.1016/j.jenvman.2023.118182