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Leaf relative uptake of carbonyl sulfide to CO seen through the lens of stomatal conductance-photosynthesis coupling.通过气孔导度-光合作用耦合的视角来看叶片对羰基硫相对于二氧化碳的相对吸收。
New Phytol. 2022 Sep;235(5):1729-1742. doi: 10.1111/nph.18178. Epub 2022 May 21.
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Carbonyl sulfide (COS) as a tracer for canopy photosynthesis, transpiration and stomatal conductance: potential and limitations.羰基硫 (COS) 作为冠层光合作用、蒸腾作用和气孔导度的示踪剂:潜力和局限性。
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引用本文的文献

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Harnessing Light Quality for Potato Production: Red and Blue Light as Key Regulators of Growth and Yield.利用光质促进马铃薯生产:红光和蓝光作为生长和产量的关键调节因子
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通过气孔导度-光合作用耦合的视角来看叶片对羰基硫相对于二氧化碳的相对吸收。

Leaf relative uptake of carbonyl sulfide to CO seen through the lens of stomatal conductance-photosynthesis coupling.

机构信息

Department of Global Ecology, Carnegie Institution for Science, 260 Panama Street, Stanford, CA, 94305, USA.

Earth and Planetary Science, Weizmann Institute of Science, Rehovot, 76100, Israel.

出版信息

New Phytol. 2022 Sep;235(5):1729-1742. doi: 10.1111/nph.18178. Epub 2022 May 21.

DOI:10.1111/nph.18178
PMID:35478172
Abstract

Carbonyl sulfide (COS) has emerged as a multi-scale tracer for terrestrial photosynthesis. To infer ecosystem-scale photosynthesis from COS fluxes often requires knowledge of leaf relative uptake (LRU), the concentration-normalized ratio between leaf COS uptake and photosynthesis. However, current mechanistic understanding of LRU variability remains inadequate for deriving robust COS-based estimates of photosynthesis. We derive a set of closed-form equations to describe LRU responses to light, humidity and CO based on the Ball-Berry stomatal conductance model and the biochemical model of photosynthesis. This framework reproduces observed LRU responses: decreasing LRU with increasing light or decreasing humidity; it also predicts that LRU increases with ambient CO . By fitting the LRU equations to flux measurements on a C reed (Typha latifolia), we obtain physiological parameters that control LRU variability, including an estimate of the Ball-Berry slope of 7.1 without using transpiration measurements. Sensitivity tests reveal that LRU is more sensitive to photosynthetic capacity than to the Ball-Berry slope, indicating stomatal response to photosynthesis. This study presents a simple framework for interpreting observed LRU variability and upscaling LRU. The stoma-regulated LRU response to CO suggests that COS may offer a unique window into long-term stomatal acclimation to elevated CO .

摘要

羰基硫 (COS) 已成为陆地光合作用的多尺度示踪剂。为了从 COS 通量推断生态系统尺度的光合作用,通常需要了解叶片相对吸收量(LRU),即叶片 COS 吸收量与光合作用的浓度归一化比值。然而,目前对 LRU 变化的机制理解还不足以推导出基于 COS 的可靠光合作用估计值。我们根据 Ball-Berry 气孔导度模型和光合作用的生化模型,推导出了一组描述 LRU 对光、湿度和 CO 响应的封闭形式方程。该框架再现了观察到的 LRU 响应:随着光强或湿度的增加,LRU 降低;它还预测 LRU 随着环境 CO 的增加而增加。通过将 LRU 方程拟合到在芦苇(Typha latifolia)上进行的通量测量,我们获得了控制 LRU 变异性的生理参数,包括在不使用蒸腾测量的情况下估计的 Ball-Berry 斜率为 7.1。敏感性测试表明,LRU 对光合能力的敏感性比对 Ball-Berry 斜率的敏感性更高,这表明气孔对光合作用的响应。本研究提出了一个简单的框架来解释观察到的 LRU 变异性和 LRU 的放大。CO 调控的 LRU 响应表明,COS 可能提供了一个独特的窗口,了解长期气孔对高 CO 的适应。