Global S&T Development Trend Analysis Platform of Resources and Environment
DOI | 10.1111/gcb.16084 |
Climate legacies determine grassland responses to future rainfall regimes | |
Caitlin M. Broderick; Kate Wilkins; Melinda D. Smith; John M. Blair | |
2022-01-26 | |
发表期刊 | Global Change Biology
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出版年 | 2022 |
英文摘要 | Climate variability and periodic droughts have complex effects on carbon (C) fluxes, with uncertain implications for ecosystem C balance under a changing climate. Responses to climate change can be modulated by persistent effects of climate history on plant communities, soil microbial activity, and nutrient cycling (i.e., legacies). To assess how legacies of past precipitation regimes influence tallgrass prairie C cycling under new precipitation regimes, we modified a long-term irrigation experiment that simulated a wetter climate for >25 years. We reversed irrigated and control (ambient precipitation) treatments in some plots and imposed an experimental drought in plots with a history of irrigation or ambient precipitation to assess how climate legacies affect aboveground net primary productivity (ANPP), soil respiration, and selected soil C pools. Legacy effects of elevated precipitation (irrigation) included higher C fluxes and altered labile soil C pools, and in some cases altered sensitivity to new climate treatments. Indeed, decades of irrigation reduced the sensitivity of both ANPP and soil respiration to drought compared with controls. Positive legacy effects of irrigation on ANPP persisted for at least 3 years following treatment reversal, were apparent in both wet and dry years, and were associated with altered plant functional composition. In contrast, legacy effects on soil respiration were comparatively short-lived and did not manifest under natural or experimentally-imposed “wet years,” suggesting that legacy effects on CO2 efflux are contingent on current conditions. Although total soil C remained similar across treatments, long-term irrigation increased labile soil C and the sensitivity of microbial biomass C to drought. Importantly, the magnitude of legacy effects for all response variables varied with topography, suggesting that landscape can modulate the strength and direction of climate legacies. Our results demonstrate the role of climate history as an important determinant of terrestrial C cycling responses to future climate changes. |
领域 | 气候变化 ; 资源环境 |
URL | 查看原文 |
引用统计 | |
文献类型 | 期刊论文 |
条目标识符 | http://119.78.100.173/C666/handle/2XK7JSWQ/345990 |
专题 | 气候变化 资源环境科学 |
推荐引用方式 GB/T 7714 | Caitlin M. Broderick,Kate Wilkins,Melinda D. Smith,et al. Climate legacies determine grassland responses to future rainfall regimes[J]. Global Change Biology,2022. |
APA | Caitlin M. Broderick,Kate Wilkins,Melinda D. Smith,&John M. Blair.(2022).Climate legacies determine grassland responses to future rainfall regimes.Global Change Biology. |
MLA | Caitlin M. Broderick,et al."Climate legacies determine grassland responses to future rainfall regimes".Global Change Biology (2022). |
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