AI Article Synopsis

  • - Intron retention (IR) is a key alternative splicing process in Arabidopsis, significantly affecting gene regulation, but its full impacts on plant growth and environmental responses are still not well understood.
  • - Research shows that IR helps control gene expression by keeping intron-retained transcripts (IRTs) in the nucleus, preventing them from being translated into proteins.
  • - Light influences the IR of specific light signaling genes, impacting seedling development, and this regulation involves COP1 and the spliceosome, highlighting a connection between light exposure and plant growth mechanisms.

Article Abstract

Intron retention (IR) is the most common alternative splicing event in Arabidopsis. An increasing number of studies have demonstrated the major role of IR in gene expression regulation. The impacts of IR on plant growth and development and response to environments remain underexplored. Here, we found that IR functions directly in gene expression regulation on a genome-wide scale through the detainment of intron-retained transcripts (IRTs) in the nucleus. Nuclear-retained IRTs can be kept away from translation through this mechanism. COP1-dependent light modulation of the IRTs of light signaling genes, such as PIF4, RVE1, and ABA3, contribute to seedling morphological development in response to changing light conditions. Furthermore, light-induced IR changes are under the control of the spliceosome, and in part through COP1-dependent ubiquitination and degradation of DCS1, a plant-specific spliceosomal component. Our data suggest that light regulates the activity of the spliceosome and the consequent IRT nucleus detainment to modulate photomorphogenesis through COP1.

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Source
http://www.ncbi.nlm.nih.gov/pmc/articles/PMC11180117PMC
http://dx.doi.org/10.1038/s41467-024-49571-9DOI Listing

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