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首页> 外文期刊>Genes and Development: a Journal Devoted to the Molecular Analysis of Gene Expression in Eukaryotes, Prokaryotes, and Viruses >Genome-wide replication profiles indicate an expansive role for Rpd3L in regulating replication initiation timing or efficiency, and reveal genomic loci of Rpd3 function in Saccharomyces cerevisiae.
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Genome-wide replication profiles indicate an expansive role for Rpd3L in regulating replication initiation timing or efficiency, and reveal genomic loci of Rpd3 function in Saccharomyces cerevisiae.

机译:全基因组复制配置文件表明Rpd3L在调节复制起始时间或效率方面起着广泛的作用,并揭示了酿酒酵母中Rpd3功能的基因座。

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摘要

In higher eukaryotes, heritable gene silencing is associated with histone deacetylation and late replication timing. In Saccharomyces cerevisiae, the histone deacetylase Rpd3 regulates gene expression and also modulates replication timing; however, these mechanisms have been suggested to be independent, and no global association has been found between replication timing and gene expression levels. Using 5-Bromo-2'-deoxyuridine (BrdU) incorporation to generate genome-wide replication profiles, we identified >100 late-firing replication origins that are regulated by Rpd3L, which is specifically targeted to promoters to silence transcription. Rpd3S, which recompacts chromatin after transcription, plays a primary role at only a handful of origins, but subtly influences initiation timing globally. The ability of these functionally distinct Rpd3 complexes to affect replication initiation timing supports the idea that histone deacetylation directly influences initiation timing. Accordingly, loss of Rpd3 function results in higher levels of histone H3 and H4 acetylation surrounding Rpd3-regulated origins, and these origins show a significant association with Rpd3 chromatin binding and gene regulation, supporting a general link between histone acetylation, replication timing, and control of gene expression in budding yeast. Our results also reveal a novel and complementary genomic map of Rpd3L- and Rpd3S-regulated chromosomal loci.
机译:在高等真核生物中,可遗传的基因沉默与组蛋白去乙酰化和晚期复制时机有关。在酿酒酵母中,组蛋白脱乙酰基酶Rpd3调节基因表达并调节复制时机。然而,这些机制被认为是独立的,并且在复制时间和基因表达水平之间没有发现全局关联。使用5-Bromo-2'-deoxyuridine(BrdU)掺入生成全基因组复制配置文件,我们确定了受Rpd3L调控的> 100个晚期复制起点,Rpd3L专门针对启动子以沉默转录。 Rpd3S在转录后重新整合染色质,仅在少数几个来源中起主要作用,但在全球范围内微妙地影响起始时间。这些功能上不同的Rpd3复合物影响复制起始时间的能力支持了组蛋白脱乙酰化直接影响起始时间的观点。因此,Rpd3功能的丧失导致围绕Rpd3调控的起源周围较高水平的组蛋白H3和H4乙酰化,并且这些起源与Rpd3染色质结合和基因调控显着相关,支持了组蛋白乙酰化,复制时机和控制之间的一般联系酵母中的基因表达我们的结果还揭示了Rpd3L和Rpd3S调控的染色体基因座的新的和互补的基因组图。

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