Histone Nuclear Import and Chromatin Assembly
Histone Nuclear Import and Chromatin Assembly
批准号:
7935148
负责人:
LUCY F PEMBERTON
金额:
$21.87万
依托单位:
依托单位国家:
美国
项目类别:
财政年份:
2009
资助国家:
美国
项目状态:
已结题
起止时间:
2009-09-30 至 2012-04-30
关键词:
Animal ModelBindingCell CycleCell NucleusCellsChromatinChromatin ModelingCytoplasmDNA RepairEventFamilyFunctional disorderGenetic TranscriptionGenome StabilityGoalsHistonesHumanKaryopherinsLaboratoriesLocationMalignant NeoplasmsMediatingMetabolismMolecular ChaperonesMovementNeckNuclear ExportNuclear ImportNuclear Pore ComplexNucleosomesPathway interactionsPhosphorylationPhosphorylation SitePhysiologyPlayPloidiesPolymeraseProcessProtein DephosphorylationProteinsRegulationRoleStructureTestingTranscriptional RegulationVariantYeastschromatin remodelingcofactorhistone-binding proteinshuman diseasemembernucleocytoplasmic transportrepaired
中文摘要
项目描述(申请人提供):本项目的长期目标是了解核转运因子和组蛋白伴侣蛋白的功能如何协调,并调节组蛋白组装成特定的染色质结构域。我们将确定组蛋白分子伴侣如何决定组蛋白在细胞中的运动,从而作为组蛋白功能的一般调节剂。在每个细胞周期中,细胞的整个DNA内容物被快速复制并与新合成的组蛋白重新包装以形成核小体。此外,组蛋白与染色质中已经存在的组蛋白交换,以允许添加变体组蛋白,并允许聚合酶和DNA修复机器通过。组蛋白由核转运蛋白家族的特定成员输入细胞核。组蛋白分子伴侣也是组蛋白代谢的关键参与者,其在合成后不久结合组蛋白并将其护送到核小体。本项目主要研究组蛋白分子伴侣在组蛋白输入和输出中的作用,以及组蛋白分子伴侣是否调控组蛋白在细胞内的运动。该项目建立从以前的观察,酵母组蛋白伴侣Nap1 p是一个组蛋白核输入因子。具体来说,我们将测试的假设,即特定的组蛋白伴侣H3和H4,如Asflp,调节组蛋白核的进口和出口。将测试组蛋白伴侣Naplp充当H2A.Z供体和受体并调节H2A.Z的细胞定位的假设。最后,将测试不同的可逆磷酸化事件调节Naplp功能的循环,使其在细胞核和细胞质中发挥不同的作用的假设。在最近的晶体结构的背景下,磷酸化位点的分析将允许理解的机制Naplp的调节。核小体的正确组装对于维持所有细胞中的基因组稳定性至关重要。参与核小体组装和重塑途径的蛋白质的功能障碍也与人类疾病和癌症相一致。这突出了解剖组蛋白伴侣蛋白在酵母中作为模式生物的功能的重要性,并将为我们提供关于组蛋白伴侣蛋白在人类生理学和人类疾病中的作用的有用信息。
英文摘要
DESCRIPTION (provided by applicant): The long term goal of this project is to understand how the functions of nuclear transport factors and histone chaperones are coordinated, and regulate the assembly of histones into specific chromatin domains. We will determine how histone chaperones dictate the movement of histones in the cell and thereby serve as general regulators of histone function. Every cell cycle the entire DNA content of a cell is rapidly replicated and repackaged with newly synthesized histones to form nucleosomes. In addition histones are exchanged with those already in chromatin, to allow the addition of variant histones, and to allow passage of polymerases and DNA repair machineries. Histones are imported into the nucleus by specific members of the karyopherin family. Histone chaperones are also key players in histone metabolism that bind histones shortly after synthesis and escort them to the nucleosome. This project focuses on the role of histone chaperones in histone import and export, and the significant question of whether histone chaperones regulate the movement of histones in the cell. This project builds from previous observations that the yeast histone chaperone Nap1 p is a histone nuclear import factor. Specifically, we will test the hypothesis that specific histone chaperones for H3 and H4, such as Asflp, regulate histone nuclear import and export. The hypothesis that the histone chaperone Naplp acts as an H2A.Z donor and acceptor, and regulates the cellular localization of H2A.Z will be tested. Lastly the hypothesis will be tested that distinct reversible phosphorylation events regulate cycles of Naplp function, allowing it to perform distinct role in the nucleus and cytoplasm. Analysis of phosphorylation sites in the context of the recent crystal structure will allow an understanding of the mechanism of Naplp regulation. The correct assembly of nucleosomes is critical for maintaining genomic stability in all cells. The dysfunction of proteins involved in nucleosome assembly and remodeling pathways is also coincident with human disease and cancer. This highlights the importance of dissecting the function of histone chaperones in yeast as a model organism, and will give us useful information on the role of histone chaperones in human physiology and human disease.
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