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超越单一温度阈值:应用累积热应力框架来评估植物耐热性。

Beyond a single temperature threshold: Applying a cumulative thermal stress framework to plant heat tolerance.

机构信息

School of Life Sciences, University of Technology Sydney (UTS), Broadway, New South Wales, Australia.

Departamento de Ecología, Center of Applied Ecology and Sustainability (CAPES), Facultad de Ciencias Biológicas, Pontificia Universidad Católica de Chile, Santiago, Chile.

出版信息

Ecol Lett. 2024 Mar;27(3):e14416. doi: 10.1111/ele.14416.

Abstract

Most plant thermal tolerance studies focus on single critical thresholds, which limit the capacity to generalise across studies and predict heat stress under natural conditions. In animals and microbes, thermal tolerance landscapes describe the more realistic, cumulative effects of temperature. We tested this in plants by measuring the decline in leaf photosynthetic efficiency (F/F) following a combination of temperatures and exposure times and then modelled these physiological indices alongside recorded environmental temperatures. We demonstrate that a general relationship between stressful temperatures and exposure durations can be effectively employed to quantify and compare heat tolerance within and across plant species and over time. Importantly, we show how F/F curves translate to plants under natural conditions, suggesting that environmental temperatures often impair photosynthetic function. Our findings provide more robust descriptors of heat tolerance in plants and suggest that heat tolerance in disparate groups of organisms can be studied with a single predictive framework.

摘要

大多数植物耐热性研究都集中在单一的关键阈值上,这限制了在研究之间进行概括和预测自然条件下热应激的能力。在动物和微生物中,耐热性景观描述了更现实的、累积的温度效应。我们通过测量叶片光合作用效率(F/F)在一系列温度和暴露时间下的下降来检验这一点,然后将这些生理指标与记录的环境温度一起建模。我们证明,一种有效的方法是,在植物中,可以利用温度和暴露时间之间的一般关系来量化和比较不同植物物种和随时间推移的耐热性。重要的是,我们展示了 F/F 曲线如何转化为自然条件下的植物,表明环境温度常常会损害光合作用功能。我们的发现为植物耐热性提供了更可靠的描述,并表明可以使用单一的预测框架来研究不同生物群体的耐热性。

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