Exaptation of ancestral cell-identity networks enables C<sub>4</sub> photosynthesis.

Swift, Joseph; Luginbuehl, Leonie H; Hua, Lei; Schreier, Tina B; Donald, Ruth M; Stanley, Susan; Wang, Na; Lee, Travis A et al. · Nature · 2024

basic_science · Level V

Where this comes from

Abstract

C<sub>4</sub> photosynthesis is used by the most productive plants on the planet, and compared with the ancestral C<sub>3</sub> pathway, it confers a 50% increase in efficiency<sup>1</sup>. In more than 60 C<sub>4</sub> lineages, CO<sub>2</sub> fixation is compartmentalized between tissues, and bundle-sheath cells become photosynthetically activated<sup>2</sup>. How the bundle sheath acquires this alternate identity that allows efficient photosynthesis is unclear. Here we show that changes to bundle-sheath gene expression in C<sub>4</sub> leaves are associated with the gain of a pre-existing cis-code found in the C<sub>3</sub> leaf. From single-nucleus gene-expression and chromatin-accessibility atlases, we uncover DNA binding with one finger (DOF) motifs that define bundle-sheath identity in the major crops C<sub>3</sub> rice and C<sub>4</sub> sorghum. Photosynthesis genes that are rewired to be strongly expressed in the bundle-sheath cells of C<sub>4</sub> sorghum acquire cis-elements that are recognized by DOFs. Our findings are consistent with a simple model in which C<sub>4</sub> photosynthesis is based on the recruitment of an ancestral cis-code associated with bundle-sheath identity. Gain of such elements harnessed a stable patterning of transcription factors between cell types that are found in both C<sub>3</sub> and C<sub>4</sub> leaves to activate photosynthesis in the bundle sheath. Our findings provide molecular insights into the evolution of the complex C<sub>4</sub> pathway, and might also guide the rational engineering of C<sub>4</sub> photosynthesis in C<sub>3</sub> crops to improve crop productivity and resilience<sup>3,4</sup>.

Medical subject headings