Pioneer vegetation shapes soil microbial community assembly and ecosystem functions in riparian sand mining sites

T Tengfei Yan (College of Material, Chemistry and Chemical Engineering, Key Laboratory of Organosilicon Chemistry and Material Technology, Ministry of Education) Z Zhengxin Wang Y Yanxiang Shan J Jing Wang (Hunan Cancer Hospital Changsha China) D Daochun Liu Y Yevheniia Kremenetska X Xiang Lv

Abstract

Abstract Pioneer vegetation initiates the recovery of degraded ecosystem; However, its influence on soil microbial communities in riparian sand mining sites remains poorly understood. Four naturally established pioneer plant species ( Artemisia scoparia , Imperata cylindrica , Saccharum arundinaceum , and solitary trees) were selected in a representative sand mining site along the Huai River, and systematically investigated soil microbial community structure, assembly processes, co-occurrence network stability, and functional potential to elucidate the regulatory mechanisms of pioneer vegetation on soil microbial communities and ecosystem functions. The results showed that pioneer vegetation types shaped distinct soil microbial communities, with bacterial communities more responsive than fungi. Total carbon (TC), total phosphorus (TP), and nitrate nitrogen (NO 3 -N) collectively explaining 76.8% of the variation in bacterial community composition. Microbial community composition exhibited strong vegetation-specific patterns. A. scoparia plots significantly enriched Actinobacteria , whereas solitary tree plots significantly enriched Basidiomycota . Network stability varied markedly with vegetation type; Functional prediction revealed that bacterial nitrogen cycling potential was significantly modulated by vegetation type, with nitrification potential being significantly lowest in I. cylindrica . Structural equation modeling demonstrated that vegetation type indirectly influenced soil multifunctionality via regulating soil physical properties, with contrasting pathways in bacterial and fungal models. Our findings suggest potential ecological mechanisms by which pioneer plants influence early ecosystem recovery in degraded riparian zones through the “plant-soil-microbe” continuum, thus providing a scientific basis for functional trait-based ecological restoration.

Article Details

Volume / Issue Vol. 1, Issue 1
Published July 19, 2026
ISSN 2045-2322
Publisher Nature Portfolio

Journal Info

Scientific Reports

Nature Portfolio

ISSN: 2045-2322 Open Access Life Sciences

Authors (7)

T

Tengfei Yan

College of Material, Chemistry and Chemical Engineering, Key Laboratory of Organosilicon Chemistry and Material Technology, Ministry of Education

Z

Zhengxin Wang

Y

Yanxiang Shan

J

Jing Wang

Hunan Cancer Hospital Changsha China

D

Daochun Liu

Y

Yevheniia Kremenetska

X

Xiang Lv