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