Do soil health indicators predict carbon and nitrogen functional stability under drought and heat?

P Patricia Lazicki J Jaehoon Lee (SKKU Advanced Institute of Nanotechnology (SAINT) and Department of Nano Science and Technology) A Alemu Mengistu S Sindhu Jagadamma

Abstract

Healthier soils are often assumed to retain function better under climate stress. However, links between common soil health indicators and soil functional resilience to stress are elusive. Our goal was to link soil health status with stress response by quantifying the multifunctional carbon (C) and nitrogen (N) cycling response of soils under different management (forest, conventional, or organic) to drought or combined drought and heat stress. We monitored several C and N cycling functions during a 28-d stress and 28-d recovery period and calculated resistance and resilience indices for each function to create multifunctional C and N cycling indices. We related these indices to baseline soil health properties and microbial community characteristics. Traditional soil health indicators (e.g., total organic C, and microbial biomass and activity) were closely associated with N cycle resilience to drought stress. Indicators that distinguished forest from arable soils (e.g., low pH and chemical fertility, and high porosity, relative abundance of Basidiomycetes, and high C to N ratio) were generally positively related to drought resistance but negatively related to resilience. Bacterial and fungal community diversity were unrelated to either resistance or resilience for either cycle. Adding heat to drought created a strong N cycle stress which affected all sites similarly, and soil baseline properties were not related to either resistance or resilience. For both C and N cycles, stress type was the major determinant of resistance while management was the major determinant of resilience. Our results show that response to drought stress differs depending on the temperature at which it occurs, and that pH, chemical fertility, and SOM are all important components in stress response but affect C and N cycles differently.

Article Details

Journal PLoS ONE
Volume / Issue Vol. 20, Issue 6
Published June 06, 2025
Pages e0325128
ISSN 1932-6203
Publisher Public Library of Science

Journal Info

PLoS ONE

Public Library of Science

ISSN: 1932-6203 Open Access Health Sciences

Authors (4)

P

Patricia Lazicki

J

Jaehoon Lee

SKKU Advanced Institute of Nanotechnology (SAINT) and Department of Nano Science and Technology

A

Alemu Mengistu

S

Sindhu Jagadamma