ArticleCell cycle (Georgetown, Tex.)2017
Temperature-dependent regulation of rDNA condensation in Saccharomyces cerevisiae.
Article in Cell cycle (Georgetown, Tex.), 2017. The graph could read no effect estimate from its abstract, so it casts no vote on the map. Cited by 13 papers.
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The abstract states no effect estimate the extractor could read, or names no intervention and outcome on the map, so this paper lights no cell and moves no belief. It is still indexed, cited and linked below.
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Who cites it
13 citing papers in PubMed, 19 citations in OpenAlex.
- Article
- Cohesin: an emerging master regulator at the heart of cardiac development.Molecular biology of the cell · 2023Article
- The vacuole shapes the nucleus and the ribosomal DNA loop during mitotic delays.Life science alliance · 2022Article
- G1-Cyclin2 (Cln2) promotes chromosome hypercondensation in eco1/ctf7 rad61 null cells during hyperthermic stress in Saccharomyces cerevisiae.G3 (Bethesda, Md.) · 2022Article
- PCNA promotes context-specific sister chromatid cohesion establishment separate from that of chromatin condensation.Cell cycle (Georgetown, Tex.) · 2020Article
- Promotion of Hyperthermic-Induced rDNA Hypercondensation inGenetics · 2020Article
- Review
- The chromatin remodeler Chd1 regulates cohesin in budding yeast and humans.Scientific reports · 2019Article
- Article
- The ribosomal DNA metaphase loop of Saccharomyces cerevisiae gets condensed upon heat stress in a Cdc14-independent TORC1-dependent manner.Cell cycle (Georgetown, Tex.) · 2018Article
- Nucleolar structure: Yeast rDNA feels the heat.Cell cycle (Georgetown, Tex.) · 2017Article
- Chl1 DNA helicase and Scc2 function in chromosome condensation through cohesin deposition.PloS one · 2017Article
- Article
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2 authors at 1 institution in 1 country.
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Abstract
Chromatin condensation during mitosis produces detangled and discrete DNA entities required for high fidelity sister chromatid segregation during mitosis and positions DNA away from the cleavage furrow during cytokinesis. Regional condensation during G1 also establishes a nuclear architecture through which gene transcription is regulated but remains plastic so that cells can respond to changes in nutrient levels, temperature and signaling molecules. To date, however, the potential impact of this plasticity on mitotic chromosome condensation remains unknown. Here, we report results obtained from a new condensation assay that wildtype budding yeast cells exhibit dramatic changes in rDNA conformation in response to temperature. rDNA hypercondenses in wildtype cells maintained at 37°C, compared with cells maintained at 23°C. This hypercondensation machinery can be activated during preanaphase but readily inactivated upon exposure to lower temperatures. Extended mitotic arrest at 23°C does not result in hypercondensation, negating a kinetic-based argument in which condensation that typically proceeds slowly is accelerated when cells are placed at 37°C. Neither elevated recombination nor reduced transcription appear to promote this hypercondensation. This heretofore undetected temperature-dependent hypercondensation pathway impacts current views of chromatin structure based on conditional mutant gene analyses and significantly extends our understanding of physiologic changes in chromatin architecture in response to hypothermia.
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