4.6 Article

Linkages between Sphagnum metabolites and peatland CO2 uptake are sensitive to seasonality in warming trends

期刊

NEW PHYTOLOGIST
卷 237, 期 4, 页码 1164-1178

出版社

WILEY
DOI: 10.1111/nph.18601

关键词

carbon cycle; climate change; climate feedback; intraspecific variability; phenotypic plasticity; plant metabolism; seasonality; Sphagnum

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In this study, a reciprocal transplant experiment was conducted along a climate gradient in Europe to investigate the effects of climate warming on the seasonality of metabolites produced by Sphagnum mosses and the consequences for peatland carbon uptake. The results showed that Sphagnum species exhibited consistent responses to warming, with shifts in their primary or secondary metabolites according to seasons. These shifts were also correlated with changes in gross ecosystem productivity, particularly in spring and autumn. The findings highlight the plasticity of plant metabolites and their ability to impact carbon processes in ecosystems.
Plants produce a wide diversity of metabolites. Yet, our understanding of how shifts in plant metabolites as a response to climate change feedback on ecosystem processes remains scarce. Here, we test to what extent climate warming shifts the seasonality of metabolites produced by Sphagnum mosses, and what are the consequences of these shifts for peatland C uptake. We used a reciprocal transplant experiment along a climate gradient in Europe to simulate climate change. We evaluated the responses of primary and secondary metabolites in five Sphagnum species and related their responses to gross ecosystem productivity (GEP). When transplanted to a warmer climate, Sphagnum species showed consistent responses to warming, with an upregulation of either their primary or secondary metabolite according to seasons. Moreover, these shifts were correlated to changes in GEP, especially in spring and autumn. Our results indicate that the Sphagnum metabolome is very plastic and sensitive to warming. We also show that warming-induced changes in the seasonality of Sphagnum metabolites have consequences on peatland GEP. Our findings demonstrate the capacity for plant metabolic plasticity to impact ecosystem C processes and reveal a further mechanism through which Sphagnum could shape peatland responses to climate change.

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