AI Article Synopsis

  • - Understanding how molecular mechanisms regulate grain yield is crucial for enhancing agricultural productivity, specifically focusing on the role of protein ubiquitination in plant growth.
  • - Researchers identified the E3 ligase SGD1 and its E2 partner SiUBC32 as significant factors in grain yield control in Setaria italica, with similar functions observed in other crops like wheat, maize, and rice.
  • - The SGD1 protein enhances plant growth by stabilizing the brassinosteroid receptor BRI1 and overexpression of an elite SGD1 variant increased grain yield by 12.8% per plant while promoting various biological processes essential for plant health and productivity.

Article Abstract

Understanding the molecular mechanisms that regulate grain yield is important for improving agricultural productivity. Protein ubiquitination controls various aspects of plant growth but lacks understanding on how E2-E3 enzyme pairs impact grain yield in major crops. Here, we identified a RING-type E3 ligase SGD1 and its E2 partner SiUBC32 responsible for grain yield control in Setaria italica. The conserved role of SGD1 was observed in wheat, maize, and rice. Furthermore, SGD1 ubiquitinates the brassinosteroid receptor BRI1, stabilizing it and promoting plant growth. Overexpression of an elite SGD1 haplotype improved grain yield by about 12.8% per plant, and promote complex biological processes such as protein processing in endoplasmic reticulum, stress responses, photosystem stabilization, and nitrogen metabolism. Our research not only identifies the SiUBC32-SGD1-BRI1 genetic module that contributes to grain yield improvement but also provides a strategy for exploring key genes controlling important traits in Poaceae crops using the Setaria model system.

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Source
http://www.ncbi.nlm.nih.gov/pmc/articles/PMC10226984PMC
http://dx.doi.org/10.1038/s41467-023-38812-yDOI Listing

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