Trophic regulation constrains ecosystem carbon accumulation under global change

Трофическая регуляция ограничивает накопление углерода в экосистемах в условиях глобальных изменений
Biao Zhu, Jens‐Christian Svenning, Lidong Mo, Yadvinder Malhi, Shaopeng Wang, Changlin Xu, Xincheng Li, Gukailin Ao, Shuotian Lai, Wenao Wu, Meng Pan
2026-08-28

Earth system modelsecosystem carbon accumulationglobal change factorsherbivore body sizetrophic regulation
Global change is rapidly reshaping the ecosystem carbon cycle, yet how trophic regulation-a fundamental driver of ecosystem biogeochemical cycling-mediates these responses remains poorly understood. Here we present a global synthesis of interactions between trophic regulation and major global change factors (GCFs: fertilization, warming, fire, increased precipitation, drought, and multiple GCFs), integrating 708 paired full-factorial experimental tests across 132 studies worldwide. We show that while GCFs alone increase ecosystem carbon stocks by 27% on average, their interactions with herbivores drive carbon losses of 23%, reversing the potential gains from individual GCF effects. Carbon losses are functionally localized in aboveground plant, litter, and microbial biomass carbon, with the most pronounced depletion occurring in the tropics, drylands, aquatic systems, and restoring ecosystems. Herbivore body size emerged as a directional trait shaping these outcomes, with small-bodied herbivores exerting disproportionately negative effects. Importantly, while excluding herbivores enhances carbon accumulation under global change, this sequestration benefit comes at the cost of reduced plant diversity, revealing an inherent trade-off between carbon-centric objectives and ecosystem integrity. Together, our findings demonstrate that carbon sequestration potential under global change cannot be evaluated independently of trophic regulation. Accounting for animal-mediated feedback is therefore essential for realistic Earth system model projections and for developing nature-based solutions that align climate mitigation with biodiversity conservation.
1
A global synthesis integrated 708 paired full-factorial experimental tests from 132 studies to assess trophic regulation under six major global change factors.
2
Carbon losses were concentrated in aboveground plant, litter, and microbial biomass, especially in tropical, dryland, aquatic, and restoring ecosystems.
3
Excluding herbivores increased carbon sequestration under global change but reduced plant diversity, revealing a trade-off between carbon storage and ecosystem integrity.
4
Global change factors alone increased ecosystem carbon stocks by 27% on average, whereas interactions with herbivores caused 23% carbon losses, reversing these gains.
5
Small-bodied herbivores exerted disproportionately negative effects on carbon accumulation, indicating herbivore body size is a directional trait shaping global-change responses.

Ecosystem carbon stocks and accumulation under global change mediated by herbivore–plant interactions

How trophic regulation, particularly herbivore presence, body size, and exclusion, alters carbon sequestration across ecosystem carbon pools, biomes, and ecosystem types, including the trade-off between carbon accumulation and plant diversity

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2026-08-28
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Biao Zhu
Jens‐Christian Svenning
Lidong Mo
Yadvinder Malhi
Shaopeng Wang
Changlin Xu
Xincheng Li
Gukailin Ao
Shuotian Lai
Wenao Wu
Meng Pan
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