Rubisco deactivation and chloroplast electron transport rates co-limit photosynthesis above optimal leaf temperature in terrestrial plants.

Scafaro, Andrew P; Posch, Bradley C; Evans, John R; Farquhar, Graham D; Atkin, Owen K · Nat Commun · 2023

basic_science · Level V

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Abstract

Net photosynthetic CO<sub>2</sub> assimilation rate (A<sub>n</sub>) decreases at leaf temperatures above a relatively mild optimum (T<sub>opt</sub>) in most higher plants. This decline is often attributed to reduced CO<sub>2</sub> conductance, increased CO<sub>2</sub> loss from photorespiration and respiration, reduced chloroplast electron transport rate (J), or deactivation of Ribulose-1,5-bisphosphate Carboxylase Oxygenase (Rubisco). However, it is unclear which of these factors can best predict species independent declines in A<sub>n</sub> at high temperature. We show that independent of species, and on a global scale, the observed decline in A<sub>n</sub> with rising temperatures can be effectively accounted for by Rubisco deactivation and declines in J. Our finding that A<sub>n</sub> declines with Rubisco deactivation and J supports a coordinated down-regulation of Rubisco and chloroplast electron transport rates to heat stress. We provide a model that, in the absence of CO<sub>2</sub> supply limitations, can predict the response of photosynthesis to short-term increases in leaf temperature.

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