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Genetic and Genomewide Analysis of Simultaneous Mutations in Acetylated and Methylated Lysine Residues in Histone H3 in Saccharomyces cerevisiae

机译:酿酒酵母组蛋白H3中乙酰化和甲基化赖氨酸残基同时突变的遗传和全基因组分析

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摘要

Acetylated and methylated lysine residues in histone H3 play important roles in regulating yeast gene expression and other cellular processes. Previous studies have suggested that histone H3 acetylated and methylated lysine residues may functionally interact through interdependent pathways to regulate gene transcription. A common genetic test for functional interdependence is to characterize the phenotype of a double mutant. Using this strategy, we tested the genetic interaction between histone H3 mutant alleles that simultaneously eliminate acetylated or methylated lysine residues. Our results indicate that mutation of histone H3 acetylated lysine residues alleviates growth phenotypes exhibited by the H3 methylated lysine mutant. In contrast, histone H3 acetylated and methylated lysine mutants display largely independent effects on yeast gene expression. Intriguingly, these expression changes are preferentially associated with chromosomal regions in which histone H3 lysine residues are hypoacetylated and hypomethylated. Finally, we show that the acetylated and methylated lysine mutants have strikingly different effects on the binding of Sir4 to yeast telomeres, suggesting that histone H3 acetylated lysine residues regulate yeast silencing through a mechanism independent of SIR binding.
机译:组蛋白H3中的乙酰化和甲基化赖氨酸残基在调节酵母基因表达和其他细胞过程中起重要作用。先前的研究表明,组蛋白H3乙酰化和甲基化的赖氨酸残基可能通过相互依赖的途径进行功能性相互作用以调节基因转录。功能相互依赖性的常见遗传测试是表征双突变体的表型。使用这种策略,我们测试了同时消除乙酰化或甲基化赖氨酸残基的组蛋白H3突变等位基因之间的遗传相互作用。我们的结果表明,组蛋白H3乙酰化赖氨酸残基的突变减轻了H3甲基化赖氨酸突变体表现出的生长表型。相反,组蛋白H3乙酰化和甲基化的赖氨酸突变体对酵母基因表达显示出很大的独立影响。有趣的是,这些表达变化优先与组蛋白H3赖氨酸残基被低乙酰化和低甲基化的染色体区域相关。最后,我们表明乙酰化和甲基化的赖氨酸突变体对Sir4与酵母端粒的结合具有显着不同的影响,表明组蛋白H3乙酰化的赖氨酸残基通过独立于SIR结合的机制调节酵母沉默。

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