AI Article Synopsis

  • The C4 photosynthetic pathway offers significant advantages for plants in hot, dry conditions, crucial for the evolution of major crops.
  • Increased vein density and specialized bundle sheath cells are key traits that enabled the development of this pathway.
  • Research indicates that the SHORT ROOT (SHR) protein regulates essential functions in bundle sheath cells, impacting photosynthesis and resilience under heat stress, making it a potential target for improving non-C4 crops.

Article Abstract

The C4 photosynthetic pathway provided a major advantage to plants growing in hot, dry environments, including the ancestors of our most productive crops. Two traits were essential for the evolution of this pathway: increased vein density and the functionalization of bundle sheath cells for photosynthesis. Although GRAS transcriptional regulators, including SHORT ROOT (SHR), have been implicated in mediating leaf patterning in both C3 and C4 species, little is known about what controls the specialized features of the cells that mediate C4 metabolism and physiology. We show in the model monocot, , that SHR regulates components of multiple cell identities, including chloroplast biogenesis and photosynthetic gene expression in bundle sheath cells, a central feature of C4 plants. Furthermore, we found that it also contributes to the two-cell compartmentalization of the characteristic four-carbon shuttle pathway. Disruption of SHR function clearly reduced photosynthetic capacity and seed yield in mutant plants under heat stress. Together, these results show how cell identities are remodeled by to host the suite of traits characteristic of C4 regulation, which are a main engineering target in non-C4 crops to improve climate resilience.

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Source
http://www.ncbi.nlm.nih.gov/pmc/articles/PMC10802423PMC
http://dx.doi.org/10.1101/2023.12.21.572850DOI Listing

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