J Plant Ecol ›› Advance articles     DOI:10.1093/jpe/rtag202

• Research Article •    

Patterns and determinants of the glomalin-related soil protein accrual at rock-soil interfaces across two lithologies in karst forests, Southwest China

Qiumei Ling1, 2, 3, †, Hanqing Wu1, 2, †, *, Lei Xie1, 2, Songjiang Hu1, 2, 3, Tong Li4, Ram Dalal A M4, Apostolos Kyriazopoulos5, Shenglong Li6, Wei Wan7, Peilei Hu1, 2, Jun Xiao1, 2, Hu Du1, 2, Jie Zhao1, 2, Hongsong Chen1, 2, Kelin Wang1, 2, Wei Zhang1, 2, *   

  1. 1. Institute of Subtropical Agriculture, Chinese Academy of Sciences, Changsha 410125, China;
    2. Huanjiang Agriculture Ecosystem Observation and Research Station of Guangxi, Guangxi Key Laboratory of Karst Ecological Processes and Services, Huanjiang Observation and Research Station for Karst Ecosystems, Chinese Academy of Sciences, Huanjiang 547100, China;
    3. University of Chinese Academy of Sciences, Beijing 100049, China;
    4. School of Agriculture and Food Sustainability, The University of Queensland, St Lucia, QLD 4072, Australia;
    5. Department of Forestry and Management of the Environment and Natural Resources, Democritus University of Thrace, 193 Pantazidou Str., 68200 Orestiada, Greece;
    6. College of Urban and Environmental Sciences, Central China Normal University, Wuhan 430079, China;
    7. School of Resources and Environment, Nanchang University, Nanchang 330031, China
    *Corresponding authors:W Zhang (E-mail:zhangw@isa.ac.cn); HQ Wu (E-mail:hqwu@isa.ac.cn).
    † These authors contributed equally to this work.
  • Received:2025-12-23 Accepted:2026-08-12 Published:2026-10-06
  • Supported by:
    This study was supported by the Natural Science Foundation of Guangxi Zhuang Autonomous Region (2026GXNSFFA00640003; 2025GXNSFAA069812); the Science and Technology Innovation Program of Hunan Province (2025RC1066); the Natural Science Foundation of China (42407045).

Abstract: Glomalin-related soil protein (GRSP) is a complex microbial-derived glycoprotein mixture that acts as an essential bio-glue stabilizing organic carbon (C) pools and driving soil aggregation and C sequestration. Yet, how divergent bedrocks (lithology) and rock-soil interfaces govern GRSP accrual in karst forest ecosystems remains poorly understood. Here, we investigated GRSP accrual at rock-soil interfaces and adjacent bulk soils across limestone and dolostone in Southwest China. GRSP contents at the rock-soil interface significantly surpassed those in corresponding bulk soil, irrespective of lithology. GRSPT contents and their contributions to soil organic carbon (SOC) were consistently higher in limestone than in dolostone. Mantel’s test and regression analysis demonstrated strong correlations between GRSP accrual and microbial diversity (Virusesα; Bacteriaα), biomass (MBC; MBN), ecoenzymatic C:N stoichiometry (EC:N), soil mineral protection ((Ca+Mg)e; (Fe+Al)o), and labile N (DON; NH4+). Random forest modeling confirmed microbial biomass as the key driver of GRSP accumulation, followed by mineral protection, microbial diversity, labile N, and ecoenzymatic stoichiometry. Structural equation modeling revealed that lithology and rock-soil interface facilitated GRSP formation and stabilization by enhancing N availability, mineral protection, microbial diversity, and biomass. We proposed the “Roccosphere” concept to delineate the rock-soil interface as a distinct microhabitat shaped by bedrock weathering and microbial activity in karst regions, analogous to the “Rhizosphere” and “Hyphosphere”. These findings highlight the vital influence of lithology and the rock-soil interface on GRSP accrual via microbial and mineral C pumps, with implications for soil C sequestration and vegetation restoration in degraded karst forest ecosystems.

This study reveals that lithology and rock-soil interfaces synergistically drive GRSP accrual in karst forests via microbial and mineral C pumps. Rock-soil interface soils show significantly higher GRSP than bulk soils, with limestone outperforming dolostone. We propose the “Roccosphere” concept to define this microhabitat, offering new insights for soil carbon sequestration in degraded karst ecosystems.

Key words: SOC sequestration, bedrock weathering, microbial traits, reactive minerals, microbial nutrient limitation