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Otsubo, Y.

Publications and source records attributed to Otsubo, Y..

3 recordsLinked to original sources

Differential quantitative requirements for pre-mRNA splicing-regulated shelterin protein levels in distinct telomere functions

Telomeres perform multiple functions to maintain genome stability, including telomere length regulation, chromosome end protection, and meiotic chromosome dynamics. These functions are governed by shelterin, a telomere-binding protein complex. Here, we show that efficient pre-mRNA splicing of the Schizosaccharomyces pombe shelterin components Rap1 and Poz1 ensures sufficient protein levels, which are critical for telomere maintenance. Our analyses revealed that Tls1 and Cay1 act at distinct steps in splicing, specifically affecting rap1 and poz1 transcripts: Tls1 strongly interacts with Brr2 (a splicing factor), whereas Cay1 preferentially associates with introns. Accordingly, deletion of tls1 and cay1 synergistically impaired splicing of rap1 and poz1 transcripts and reduced their protein levels, leading to abnormal telomere elongation. Removal of introns from the rap1 and poz1 genes restored normal protein levels and telomere length, confirming that defective splicing underlies these defects. Analyses of the phenotypes of single and double tls1{Delta} and cay1{Delta} mutants revealed that different telomere functions vary in their dependence on Rap1 levels: telomere length regulation and, to a lesser extent, meiosis require higher protein abundance, whereas chromosome end protection can be sustained with minimal amounts. These findings reveal a hierarchical requirement for Rap1 across telomere functions and establish a framework for understanding how splicing-dependent regulation of shelterin components coordinates multiple aspects of telomere biology.

molecular biology↗

Subtelomere-specific condensed chromatin is regulated by three different histone modifications

In fission yeast, telomere-adjacent subtelomeres form a subtelomere-specific condensed chromatin structure, referred to as a knob, requiring histone H2A-S121 phosphorylation-dependent localization of Sgo2 at subtelomeres during interphase. However, the mechanism underlying specific Sgo2 localization in subtelomeres remains unclear. Our genetic screen identified Nts1, a histone deacetylase complex component, as a regulator of Sgo2 localization. Nts1 localized to subtelomeres during interphase and influenced histone H4 acetylation. The deletion of both Nts1 and Set2, a histone H3-K36 methyltransferase, led to the loss of Sgo2 at subtelomeres. These findings indicate that H4 deacetylation and H3-K36 methylation redundantly determine Sgo2 localization under H2A-S121 phosphorylation.

genetics↗

Structure-based engineering of Tor complexes uncovers different roles of two types of yeast TORC1s

Certain proteins assemble into diverse complex states, each having a distinctive and unique function in the cell. The target of rapamycin complex 1 (TORC1) plays a central role in signaling pathways for cells to respond to their environment, such as nutritional status. TORC1 is widely recognised for its association with various diseases. The budding yeast Saccharomyces cerevisiae has two types of TORC1s comprising different constituent proteins, Tor1- and Tor2-containing TORC1s but are considered to have the same function. Here, we rationally redesigned the complex states by structure-based engineering and constructed a Tor2 mutant to form TORC2 but not TORC1. Functional analysis of the mutant revealed that the two types of TORC1s induced different phenotypes-rapamycin, caffeine and pH dependences of cell growth and replicative and chronological lifespans. These findings are expected to provide further insights into various fields such as molecular evolution and lifespan.

molecular biology↗