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Shifting Carbon Fractions in Forest Soils Offset 14 C‐Based Turnover Times Along a 1700 m Elevation Gradient

Margaux Moreno‐Duborgel; Sia Gosheva‐Oney; Beatriz González‐Domínguez; Mirjam Brühlmann; Luisa I. Minich; Negar Haghipour; Roman Flury; Claudia Guidi; Alexander S. Brunmayr; Samuel Abiven; Timothy I. Eglinton; Frank Hagedorn
Global Change Biology · Vol. 31, Issue 7 · 2025

Abstract

Climate change impacts the soil carbon cycle, yet there is no scientific consensus on the vulnerability of soil organic carbon (SOC) stocks to global warming. Here, we studied soil organic matter (SOM) changes across 50 Swiss forest sites covering an elevation gradient from 270 to 2020 m, with dominant tree species changing from sub‐Mediterranean pubescent oak to mountain pine at treeline. We sought to assess how elevation, serving as an integrating variable for climate variation, affects the stocks, transformation state, and radiocarbon ( 14 C)‐based turnover of SOM fractions in the organic layer, as well as in particulate organic matter (POM) and mineral‐associated organic matter (MOM) fractions in forest mineral soils (0–20 cm). Our results show consistent enrichment in 13 C and 15 N across all SOM fractions with increasing elevation, indicating a ubiquitous transformation state among SOM fractions regardless of environmental conditions. However, C stocks in the organic layer and in mineral soil POM increased proportionally relative to MOM with increasing elevation. Additionally, 14 C‐based turnover times in the organic layer, the free POM, and the fine MOM fractions increased with elevation, indicating slower SOM processing and a reduced transformation of POM to MOM under harsher climatic conditions. In contrast to individual SOM fractions, total SOC stocks and 14 C‐based turnover times in the bulk mineral soil showed no elevational pattern. This indicates that with increasing elevation, the shift in composition towards POM, which has a shorter turnover time than MOM, offsets the increased turnover time within each fraction. As a result, the overall SOC turnover time remains stable across the entire elevation gradient. However, the higher proportion of C stored in the more vulnerable POM fractions in high‐elevation forests indicates that their SOC stocks may be at higher risk under climate change.

Bibliographic Information

JournalGlobal Change Biology
PublisherWiley
Publication Date2025-07-01
Publication Year2025
Volume31
Issue7
Document TypeJournal Article
Print ISSN1354-1013
eISSN1365-2486
DOI10.1111/gcb.70326
SubjectConservation Science

Access Information

NARA Access Coverage1997-01-01~Current
Journal Homepagehttps://onlinelibrary.wiley.com/loi/13652486
Publisher PageOpen Publisher Page
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