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Emerging roles for the human condensin complexes in cellular DNA repair.

机译:人类凝缩蛋白复合物在细胞DNA修复中的新兴作用。

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摘要

In human cells, chromatin structure changes dramatically upon entry into mitosis. Such changes are the result of a well-orchestrated interplay of many factors including the structural maintenance of chromosomes (SMC) family of proteins. The SMC proteins are a highly conserved group of factors shown to be essential for proper mitotic chromosome condensation and segregation. SMC proteins form the core of several multi-protein complexes which participate in mitotic chromosome condensation, sister chromatid cohesion, and other aspects of chromosome dynamics. Condensin I is one of the major SMC containing complexes and is required for proper mitotic chromosome organization. Condensin I is made up of the hCAP-E/hCAP-C SMC heterodimer and three non-SMC subunits, CNAP1 (hCAP-D2/Eg7), hCAP-G and hCAP-H. These non-SMC subunits are important for the association of condensin I with chromatin and most likely regulate the functional specificity of the condensin I complex. However, the exact role performed by each subunit is poorly understood. Our laboratory previously identified a nuclear localization and c hromosome targeting domain (NCTD) contained within the carboxy-terminus of the CNAP1 protein. The NCTD is required for the binding of CNAP1 to mitotic chromosomes, and possibly targeting holo-condensin I onto mitotic chromatin. To further understand how the CNAP1-NCTD is regulated, we used farwestern analysis to screen for proteins which interact with this functional domain. Results from this analysis revealed the carboxy-terminus of CNAP1 interacted with several nuclear proteins with high specificity, including the DNA repair enzyme poly(ADP-ribose) polymerase I (PARP-1) and CENP-C. An interaction between PARP-1 and holo-condensin I complex was later confirmed in vivo. Interestingly, this interaction is highly induced in response to DNA damage. We also show that condensin I interacts with not only PARP-1, but a specific subset of base excision repair factors including XRCC1, FEN-1 and DNA polymerases delta/&egr; following DNA damage. A significant increase is the amount of condensin I bound to chromatin after oxidative stress was also observed, suggesting recruitment of the complex to DNA damage sites. This was confirmed using a UVA 337 nm laser which generates several types of damage including base damage. The recruitment of condensin I to UVA laser induced DNA damage sites further supports a role for condensins in DNA repair. Finally, we show that depletion of condensin subunits results in compromised single-strand break repair efficiency. Taken together, these results suggest a role for condensin I in single-strand break repair in higher eukaryotes.
机译:在人类细胞中,染色质结构进入有丝分裂后会发生巨大变化。此类变化是许多因素精心协调的相互作用的结果,这些因素包括蛋白质的染色体(SMC)家族的结构维持。 SMC蛋白是一组高度保守的因子,显示出它们对于正确的有丝分裂染色体浓缩和分离必不可少。 SMC蛋白形成了几种多蛋白复合物的核心,这些复合物参与了有丝分裂染色体的凝结,姐妹染色单体的凝聚以及染色体动力学的其他方面。 Condensin I是包含复合物的主要SMC之一,是正确的有丝分裂染色体组织所必需的。凝集素I由hCAP-E / hCAP-C SMC异二聚体和三个非SMC亚基CNAP1(hCAP-D2 / Eg7),hCAP-G和hCAP-H组成。这些非SMC亚基对于凝缩蛋白I与染色质的缔合非常重要,最有可能调节凝缩蛋白I复合物的功能特异性。但是,人们对每个亚基所起的确切作用知之甚少。我们的实验室先前确定了CNAP1蛋白羧基端所含的核定位和染色体靶向结构域(NCTD)。 NCTD是CNAP1与有丝分裂染色体结合的必要条件,并且可能将全凝集素I靶向有丝分裂染色质。为了进一步了解CNAP1-NCTD的调控方式,我们使用了westernwestern分析来筛选与该功能域相互作用的蛋白质。该分析的结果表明,CNAP1的羧基末端与几种具有高特异性的核蛋白相互作用,包括DNA修复酶聚(ADP-核糖)聚合酶I(PARP-1)和CENP-C。后来在体内证实了PARP-1和全凝集素I复合物之间的相互作用。有趣的是,这种相互作用是对DNA损伤的高度诱导。我们还显示,凝集素I不仅与PARP-1相互作用,而且与碱基切除修复因子的特定子集相互作用,包括XRCC1,FEN-1和DNA聚合酶delta /&egr;。 DNA损伤后。在观察到氧化应激后,与染色质结合的凝聚素I的量也显着增加,这表明该复合物募集到DNA损伤位点。使用337 nm UVA激光可以确认这一点,该激光会产生几种类型的损坏,包括基本损坏。将凝集素I募集至UVA激光诱导的DNA损伤位点进一步支持凝集素在DNA修复中的作用。最后,我们表明,凝集素亚基的耗竭导致受损的单链断裂修复效率。综上所述,这些结果暗示了凝缩蛋白I在高等真核生物的单链断裂修复中的作用。

著录项

  • 作者

    Heale, Jason Thomas.;

  • 作者单位

    University of California, Irvine.;

  • 授予单位 University of California, Irvine.;
  • 学科 Biology Molecular.; Biology Cell.
  • 学位 Ph.D.
  • 年度 2007
  • 页码 176 p.
  • 总页数 176
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 分子遗传学;细胞生物学;
  • 关键词

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