Boreal conifers maintain carbon uptake with warming despite failure to track optimal temperatures.

Dusenge, Mirindi Eric; Warren, Jeffrey M; Reich, Peter B; Ward, Eric J; Murphy, Bridget K; Stefanski, Artur; Bermudez, Raimundo; Cruz, Marisol et al. · Nat Commun · 2023

basic_science · Level V

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Abstract

Warming shifts the thermal optimum of net photosynthesis (T<sub>optA</sub>) to higher temperatures. However, our knowledge of this shift is mainly derived from seedlings grown in greenhouses under ambient atmospheric carbon dioxide (CO<sub>2</sub>) conditions. It is unclear whether shifts in T<sub>optA</sub> of field-grown trees will keep pace with the temperatures predicted for the 21<sup>st</sup> century under elevated atmospheric CO<sub>2</sub> concentrations. Here, using a whole-ecosystem warming controlled experiment under either ambient or elevated CO<sub>2</sub> levels, we show that T<sub>optA</sub> of mature boreal conifers increased with warming. However, shifts in T<sub>optA</sub> did not keep pace with warming as T<sub>optA</sub> only increased by 0.26-0.35 °C per 1 °C of warming. Net photosynthetic rates estimated at the mean growth temperature increased with warming in elevated CO<sub>2</sub> spruce, while remaining constant in ambient CO<sub>2</sub> spruce and in both ambient CO<sub>2</sub> and elevated CO<sub>2</sub> tamarack with warming. Although shifts in T<sub>optA</sub> of these two species are insufficient to keep pace with warming, these boreal conifers can thermally acclimate photosynthesis to maintain carbon uptake in future air temperatures.

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