课题基金 / 基金详情

A Role for Protein Degradation in Nucleotide Excision-Repair

A Role for Protein Degradation in Nucleotide Excision-Repair
蛋白质降解在核苷酸切除修复中的作用
批准号:
9101808
负责人:
Kiran Madura
金额:
$30.21万
依托单位国家:
美国
项目类别:
财政年份:
2013
资助国家:
美国
项目状态:
已结题
起止时间:
2013-09-01 至 2017-11-30

项目摘要

项目成果

Kiran Madura的其他基金

相似基金

相关文献

中文摘要
翻译
描述(由申请人提供):许多DNA修复因子也在泛素/蛋白酶体系统中发挥作用,这是消除重要调控因子的保守机制。值得注意的例子包括FANC-L,其涉及范可尼贫血(FA)途径的激活,以及BRCA 1和BRCA 2蛋白,其调节DNA损伤诱导的信号系统。这些因子分别将蛋白质降解机制与DNA交联和双链断裂的修复联系起来。然而,尽管进行了广泛的研究,蛋白质周转在这些修复机制中的意义还没有得到很好的理解。在DNA修复和蛋白质降解中具有良好表征作用的其他蛋白质包括泛素缀合酶Rad 6(也称为Ubc 2)。参与转录偶联修复(CSA; CSB)、核苷酸切除修复(Rad 23; Rad 7; Rad 16; XPC; Rad 4)和转录(RNA Pol II)的因子也与蛋白质降解途径交叉,或者是蛋白酶体介导的降解的靶点。被蛋白酶体降解的关键调节因子几乎完全是核蛋白。这些因素的营业额已被彻底研究,虽然一直没有系统的努力,以确定核蛋白质降解。尽管在细胞核中检测到蛋白酶体亚基,但没有证据表明完整的、具有催化活性的蛋白酶体在细胞核中进行蛋白水解。我们最近报道称,酵母中的Sts 1蛋白质将蛋白酶体靶向细胞核周边。Sts 1的突变完全阻断了蛋白酶体的核定位。我们确定Rad 4和其他底物在sts 1 -2中稳定。值得注意的是,核蛋白也稳定在核出口突变体,提供令人信服的支持,我们的假设,许多,如果不是大多数,核底物出口到细胞质蛋白酶体附近的核周边。值得注意的是,sts 1 -2和输出突变体中的稳定蛋白在细胞核中积累。我们发现Rad 4 DNA修复蛋白被蛋白酶体迅速降解。研究提出了进一步研究蛋白质降解在核苷酸切除修复(NER)中的作用。为了表征其降解,我们检查了Sts 1 -2中的Rad 4水平,发现它是稳定的,因为蛋白酶体在该突变体中不靶向细胞核。值得注意的是,Rad 4在多个核输出突变体中也是稳定的,表明其降解需要输出到胞质蛋白酶体。这些发现意义重大,因为它们暗示了核输出机制在促进关键DNA修复因子降解方面的新的重要作用。我们将测试核输出和蛋白酶体靶向机制突变对Rad 4稳定性和核苷酸切除修复的影响。我们将具体描述Rad 4的出口及其通过胞质蛋白酶体的降解。将在核输出和蛋白酶体靶向突变体中检测环丁烷嘧啶二聚体(CPD)和6- 4光产物(6-4 PP)的切除,以及DNA修复完成后重新进入细胞周期。补充研究将使用经典的T4核酸内切酶V切割试验来测量UV诱导的DNA损伤后T^T DNA损伤的去除。
英文摘要
DESCRIPTION (provided by applicant): Many DNA repair factors also play a role in the ubiquitin/proteasome system, which is a conserved mechanism for eliminating important regulatory factors. Notable examples include FANC-L which is implicated in the activation of the Fanconi anemia (FA) pathway, and BRCA1 and BRCA2 proteins, which regulate a DNA damage-induced signaling system. These factors link protein degradation mechanisms to the repair of DNA cross-links and double strand breaks, respectively. However, despite extensive investigation, the significance of protein turnover in these repair mechanisms is not well understood. Other proteins with well-characterized roles in both DNA repair and protein degradation include the ubiquitin conjugating-enzyme Rad6 (also known as Ubc2). Factors involved in transcription-coupled repair (CSA; CSB), nucleotide excision repair (Rad23; Rad7; Rad16; XPC; Rad4) and transcription (RNA Pol II) also intersect with the protein degradation pathway, or are targets of proteasome-mediated degradation. Critical regulatory factors that are degraded by the proteasome are almost exclusively nuclear proteins. The turnover of these factors has been studied exhaustively, although there has been no systematic effort to determine where nuclear proteins are degraded. Whereas proteasome subunits are detected in the nucleus, there is no evidence that intact, catalytically active proteasomes carry out proteolysis in the nucleus. We reported recently that proteasomes are targeted to the nuclear periphery by the Sts1 protein in yeast. Mutations in Sts1 completely blocked nuclear localization of proteasomes. We determined that Rad4 and other substrates were stabilized in sts1-2. Remarkably, nuclear proteins were also stabilized in nuclear export mutants, providing compelling support for our hypothesis that many, if not most, nuclear substrates are exported to cytosolic proteasomes near the nuclear periphery. It is also noteworthy that the stabilized proteins in both sts1-2 and export mutants accumulated in the nucleus. We found that the Rad4 DNA repair protein is rapidly degraded by the proteasome. Studies are proposed to further examine the role of protein degradation in nucleotide excision-repair (NER). In an effort to characterize its degradation we examined Rad4 levels in sts1-2 and found that it was stabilized, because proteasomes are not targeted to the nucleus in this mutant. Remarkably, Rad4 was also stabilized in multiple nuclear export mutants, demonstrating that its degradation requires export to cytosolic proteasomes. These findings are significant because they implicate a new and important role for the nuclear export mechanism in promoting the degradation of a key DNA repair factor. We will test the effect of mutations in the nuclear export and proteasome-targeting mechanisms on Rad4 stability and nucleotide excision repair. We will specifically characterize the export of Rad4 and its degradation by cytosolic proteasomes. The excision of cyclobutane pyrimidine dimers (CPDs) and 6- 4 photoproducts (6-4 PPs), and the reentry into the cell cycle upon completion of DNA repair will be tested in nuclear export and proteasome-targeting mutants. Complementary studies will use the classic T4 endonuclease V cleavage assay to measure the removal of T^T DNA lesions following UV-induced DNA damage.
期刊论文(0)
专著(0)
科研奖励(0)
会议论文
A Role for Protein Degradation in Nucleotide Excision-Repair
A Role for Protein Degradation in Nucleotide Excision-Repair
A Role for Protein Degradation in Nucleotide Excision-Repair
"Studies to examine Centrin's role in DNA repair"
海外基金