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Biotin-dependent modifications of histones.

机译:组蛋白的生物素依赖性修饰。

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摘要

Post-translational modifications of histones (e.g. acetylation, methylation, phosphorylation and ubiquitination) are crucial for the regulation of chromatin structure and function; these modifications are thought to be interdependent, playing important roles in regulating transcriptional activity of DNA. Evidence has been provided that histones are also modified by the covalent binding of biotin; biotinylation of histones is mediated by holocarboxylase synthetase (HCS) and biotinidase (BTD). It has been proposed that biotinylated histones play a role in cell proliferation, gene silencing, and cellular response to DNA damage. Identification of biotinylation sites in histones is the first step in deciphering the cross-talk between biotinylation and other modifications of histones that regulate gene expression, and in understanding physiological roles of biotinylated histones. My Dissertation research addressed two major aims. In part one, I sought to identify amino acid residues that are biotinylated in histone H4, and to characterize the cross-talk between biotinylation and other known modifications in histone H4. In this study I used synthetic peptides and polyclonal antibodies to identify two biotinylation sites in human histones: lysine-8 and lysine-12 in histone H4. I also observed that acetylation and biotinylation compete for the same lysine residue, and that acetylation and methylation of histones may affect biotinylation of neighboring lysines. Subsequent studies in our laboratory have identified other biotinylation sites in histone H2A and H3, using the techniques developed and presented here.; Part two of my Dissertation work focused on identifying the genotype and phenotype associated with HCS and BTD deficiency using the fruit fly Drosophila melanogaster as a model. Knock down of HCS and BTD expression was associated with decreased histone biotinylation. HCS deficiency altered the expression of more than 500 genes; this was associated with decreased lifespan and tolerance to heat. The lifespan of HCS- and BTD-deficient flies decreased compared with wild-type flies. Likewise, HCS-deficient flies exhibited a considerably decreased tolerance to heat; effects in BTD-deficient flies were minor. This study was the first to provide evidence for an effect of HCS deficiency on gene function and phenotype in Drosophila .
机译:组蛋白的翻译后修饰(例如乙酰化,甲基化,磷酸化和泛素化)对于染色质结构和功能的调节至关重要;这些修饰被认为是相互依赖的,在调节DNA的转录活性中起重要作用。有证据表明,组蛋白也可以通过生物素的共价结合而被修饰。组蛋白的生物素化是由全羧化酶合成酶(HCS)和生物素化酶(BTD)介导的。已经提出生物素化的组蛋白在细胞增殖,基因沉默和细胞对DNA损伤的反应中起作用。识别组蛋白中生物素化位点的第一步是破译生物素化与调节基因表达的其他组蛋白修饰之间的串扰,以及了解生物素化组蛋白的生理作用的第一步。我的论文研究解决了两个主要目标。在第一部分中,我试图确定在组蛋白H4中被生物素化的氨基酸残基,并表征在组蛋白H4中生物素化与其他已知修饰之间的串扰。在这项研究中,我使用合成肽和多克隆抗体来鉴定人组蛋白中的两个生物素化位点:组蛋白H4中的赖氨酸8和赖氨酸12。我还观察到乙酰化和生物素化竞争相同的赖氨酸残基,组蛋白的乙酰化和甲基化可能影响邻近赖氨酸的生物素化。我们实验室的后续研究已使用此处开发和介绍的技术在组蛋白H2A和H3中发现了其他生物素化位点。我的论文的第二部分集中在使用果蝇果蝇作为模型识别与HCS和BTD缺乏症相关的基因型和表型。降低HCS和BTD表达与组蛋白生物素化降低有关。 HCS缺乏症改变了500多个基因的表达;这与寿命降低和耐热性有关。与野生型果蝇相比,HCS和BTD缺陷果蝇的寿命缩短。同样,缺乏HCS的果蝇对热的耐受性大大降低。缺乏BTD的果蝇的影响很小。这项研究是第一个提供证据证明HCS缺乏对果蝇基因功能和表型的影响。

著录项

  • 作者

    Camporeale, Gabriela.;

  • 作者单位

    The University of Nebraska - Lincoln.;

  • 授予单位 The University of Nebraska - Lincoln.;
  • 学科 Health Sciences Nutrition.; Biology Molecular.
  • 学位 Ph.D.
  • 年度 2006
  • 页码 98 p.
  • 总页数 98
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 预防医学、卫生学;分子遗传学;
  • 关键词

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