S. cerevisiae Cwc15p Tunes the Spliceosome Active Site for Remodeling and Catalysis

Abstract Pre-mRNA splicing is an essential step in eukaryotic gene expression during which spliceosomes remove introns from nascent RNAs while ligating the adjacent exons. Spliceosomes are cellular nanomachines composed of five small nuclear (snRNA) components and dozens of proteins, most of which are highly conserved. Despite the high conservation of many splicing factors between S. cerevisiae and H. sapiens, several protein components of the S. cerevisiae spliceosome are not essential for growth under normal laboratory conditions. This is particularly surprising for nonessential factors whose conserved domains contact the spliceosome’s catalytic core. Uncovering a function for these splicing factors can be challenging since they are not required for viability, may engage in functionally redundant interactions, and may display only weak phenotypes in the absence of secondary mutations in other spliceosome components. One such nonessential factor is the Cwc15 protein. Cwc15’s highly conserved N-terminus directly contacts the U2/U6 di-snRNA within the spliceosome catalytic core; yet its precise role in splicing has not been defined in any organism. In this work, we use molecular genetics in S. cerevisiae combined with splicing reporter assays to study Cwc15p function. We propose that Cwc15p not only promotes the stability of the active site but also its structural transitions. These functions may be critical for splicing in S. cerevisiae under nonoptimal conditions, facilitating use of weak or alternate splice sites, and could have implications for proofreading of spliceosome active site formation.

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Publication Details

Journal
G3 Genes Genomes Genetics
Published
2026-10-03
DOI
https://doi.org/10.1093/g3journal/jkag280
Primary Topic
RNA Research and Splicing
Type
article
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article

S. cerevisiae Cwc15p Tunes the Spliceosome Active Site for Remodeling and Catalysis

Dennis Halterman, Natalie J Zeps, Aaron A. Hoskins, Giovanni Balice et al.
G3 Genes Genomes Genetics
RNA Research and Splicing
article

S. cerevisiae Cwc15p Tunes the Spliceosome Active Site for Remodeling and Catalysis

Dennis Halterman, Natalie J Zeps, Aaron A. Hoskins, Giovanni Balice, S. Jones, Zach Freedman, Elizabeth Baudhuin
article en

Abstract

Abstract Pre-mRNA splicing is an essential step in eukaryotic gene expression during which spliceosomes remove introns from nascent RNAs while ligating the adjacent exons. Spliceosomes are cellular nanomachines composed of five small nuclear (snRNA) components and dozens of proteins, most of which are highly conserved. Despite the high conservation of many splicing factors between S. cerevisiae and H. sapiens, several protein components of the S. cerevisiae spliceosome are not essential for growth under normal laboratory conditions. This is particularly surprising for nonessential factors whose conserved domains contact the spliceosome’s catalytic core. Uncovering a function for these splicing factors can be challenging since they are not required for viability, may engage in functionally redundant interactions, and may display only weak phenotypes in the absence of secondary mutations in other spliceosome components. One such nonessential factor is the Cwc15 protein. Cwc15’s highly conserved N-terminus directly contacts the U2/U6 di-snRNA within the spliceosome catalytic core; yet its precise role in splicing has not been defined in any organism. In this work, we use molecular genetics in S. cerevisiae combined with splicing reporter assays to study Cwc15p function. We propose that Cwc15p not only promotes the stability of the active site but also its structural transitions. These functions may be critical for splicing in S. cerevisiae under nonoptimal conditions, facilitating use of weak or alternate splice sites, and could have implications for proofreading of spliceosome active site formation.

G3 Genes Genomes Genetics
University of Wisconsin–Madison (US), U.S. Vegetable Laboratory (US)
Openalex Percentile: Top 19%
RNA Research and Splicing
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S. cerevisiae Cwc15p Tunes the Spliceosome Active Site for Remodeling and Catalysis — Dennis Halterman, Natalie J Zeps, et al. · G3 Genes Genomes Genetics (2026) | TGRS Research Map | TGRS