Aridity-induced energy reallocation from green to brown food webs predicts grassland carbon storage

Перераспределение энергии от «зеленых» к «коричневым» трофическим сетям вследствие высыхания предсказывает запасение углерода в степях
Andrew D. Barnes, Malte Jochum, Kara Allen, Nianpeng He, Manqiang Liu, Bingbing Wan, Xiaoyun Chen, Junneng Yao, Feng Hu
2026-06-17

aridity gradientenergy flux to herbivory and microbivorygreen vs brown energy channelssoil food web energeticssoil organic carbon (SOC)
Increasing aridity is predicted to alter the structure and functioning of soil food webs, yet its impacts on grassland food-web energetics and the resulting consequences for soil carbon sequestration remain poorly understood. Here, we quantified energy fluxes in soil food webs along a natural aridity gradient using data from 240 observations across 30 grassland ecosystems in the eastern Eurasian Steppe, spanning temperate (Loess and Inner Mongolian Plateaus) and alpine (Tibetan Plateau) regions. We found that increasing aridity decreases total energy flux through whole food webs across all study regions, largely driven by species losses and weakened trophic interactions. Energy flux to herbivory-based "green" channels declined more sharply than microbivory-based "brown" channels with increasing aridity, resulting in greater dominance of brown energy channels under more arid conditions across temperate grasslands. This broad-scale "browning" of soil food webs aligns with declining soil organic carbon (SOC) storage in temperate grasslands, suggesting that carbon loss through decomposition outpaces plant-derived carbon inputs under increasing aridity. In contrast, alpine grasslands showed increased SOC when the energy flux ratio of herbivory to microbivory was below the threshold of ~1, likely because lower temperatures constrain microbe-based decomposition and energy transfer to microbivory channels under more arid conditions. Understanding the context-dependent metabolic processes that underlie energy reallocation across soil food webs can augment modeling efforts to predict change to Earth's carbon cycle.
1
Context-dependent metabolic processes and aridity-driven energy reallocation across soil food webs should be integrated into Earth carbon-cycle models to improve predictions.
2
Energy flux to herbivory-based 'green' channels declines more sharply with aridity than to microbivory-based 'brown' channels, causing greater dominance of brown energy channels in more arid temperate grasslands.
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In alpine grasslands, SOC increases when the herbivory-to-microbivory energy flux ratio falls below ~1, likely because lower temperatures constrain microbe-driven decomposition and energy transfer to microbivory channels under arid conditions.
4
Increasing aridity decreases total energy flux through whole soil food webs across temperate and alpine grassland regions, driven by species losses and weakened trophic interactions.
5
The observed broad-scale 'browning' of soil food webs in temperate grasslands aligns with declining soil organic carbon (SOC), implying decomposition-driven carbon loss outpaces plant-derived carbon inputs under increasing aridity.

Soil food webs across grassland ecosystems along a natural aridity gradient in the eastern Eurasian Steppe

Aridity-driven reallocation of energy fluxes from herbivory-based 'green' channels to microbivory-based 'brown' channels and its consequences for soil organic carbon storage

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2026-06-17
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Andrew D. Barnes
Malte Jochum
Kara Allen
Nianpeng He
Manqiang Liu
Bingbing Wan
Xiaoyun Chen
Junneng Yao
Feng Hu
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