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March 21, 2026Ecology3 citations

Increased root‐derived carbon buffers soil carbon loss under simultaneous warming and nitrogen addition

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TMThomas MuratoreNCNikhil ChariRPRichard P. Phillips

Key Points

  • Examine how warming and nitrogen enrichment affect root-derived carbon dynamics in soil.
  • Conducted a long-term field experiment (16 years) in a temperate hardwood forest.
  • Evaluated effects of soil warming (+5°C) and nitrogen enrichment (+5 g N m-2 year-1).
  • Measured root-derived carbon inputs, microbial respiration, and soil carbon balances.
  • Warming reduced root-derived carbon inputs by 21% and increased microbial respiration by 46%.
  • Nitrogen enrichment increased root-derived SOC accumulation by 47%.
  • Combined warming and nitrogen addition increased root-derived SOC fourfold, preventing soil carbon loss.

Abstract

Plant roots are primary drivers of soil organic matter dynamics, mediating belowground carbon (C) inputs, stabilization, and losses. Yet, how global changes such as rising temperatures and altered nitrogen (N) availability interact to affect these dynamics has rarely been tested empirically in the field. Here, we quantify how inputs to soil organic matter from fine-root production, root exudates, and root-associated fungi respond to long-term (16 years) soil warming (+5°C), nitrogen (N) enrichment (+5 g N m-2 year-1), and their combination in a temperate hardwood forest. Warming alone reduced root-derived C inputs by 21% and increased microbial respiration by 46%, resulting in a net soil C loss of 135 g C m-2 year-1. In contrast, N enrichment increased root-derived soil organic carbon (SOC) accumulation by 47% and reduced root respiration by 40%, contributing to a near-neutral soil C balance. When combined, warming × N addition increased root-derived SOC fourfold (from 70 to 281 g C m-2 year-1), fully offsetting warming-induced C losses and maintaining soil C stocks at control levels. Root-derived SOC accumulation was positively related to fine-root production (r2 = 0.42) and to maple:oak exudate ratios (r2 = 0.31), highlighting species-specific control over C stabilization. These findings demonstrate that interacting global change factors can have balancing effects on root C allocation and microbial losses, highlighting soil N availability as a critical control determining whether warming accelerates SOC depletion or stabilizes new root-derived C.

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Cite This Study

Muratore et al. (2026) studied this question.

synapsesocial.com/papers/69be38ee6e48c4981c6799d4https://doi.org/10.1002/ecy.70351
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Also Consider

Synapse has enriched 5 closely related papers on similar clinical questions. Consider them for comparative context:

  1. 1Root traits and mycorrhizal fungi mediate reactive N and warming impacts on soil organic carbon2026 · 9 citations
  2. 2Soil nitrogen regulates root carbon secretion in the context of global change: A global meta‐analysis2024 · 7 citations
  3. 3Interactive Effects of Warming and Nitrogen Fertilization on Soil Organic Carbon, Total Nitrogen, Soil Respiration, and Microbial Activities2026
  4. 4Changes in natural 15N abundance highlight warming-induced stimulation of soil nitrate losses by coupled nitrification–denitrification in an old-growth montane forest2026
  5. 5Changes in natural 15N abundance highlight warming-induced stimulation of soil nitrate losses by coupled nitrification–denitrification in an old-growth montane forest2026