Roles of nuclear architecture and phase separation in heterochromatin repair dynamics
核结构和相分离在异染色质修复动力学中的作用
基本信息
- 批准号:10478263
- 负责人:
- 金额:$ 33.94万
- 依托单位:
- 依托单位国家:美国
- 项目类别:
- 财政年份:2015
- 资助国家:美国
- 起止时间:2015-09-17 至 2024-08-31
- 项目状态:已结题
- 来源:
- 关键词:ActinsAffectAgingArchitectureBiochemicalCancer EtiologyCellsChromatinChromosomesComplexCountryDNA RepairDNA SequenceDNA biosynthesisDataDetectionDevelopmentDiseaseDouble Strand Break RepairDrosophila genusEarly DiagnosisExposure toF-ActinFailureFoundationsGenesGenetic RecombinationGenomeGenome StabilityGenomic InstabilityGoalsHealthHeterochromatinHumanHuman GenomeInvestmentsIonizing radiationKnowledgeLinkLongevityMalignant NeoplasmsMicrofilamentsModelingMolecularMovementMutationMyosin ATPaseNormal CellNuclearNuclear Pore Complex ProteinsOrganismOutcomes ResearchPathway interactionsPersonsPhasePreventionProcessPublishingRegulationResolutionRiskRoleScreening for cancerSister ChromatidSiteSourceStructureSumoylation PathwayTestingTherapeutic InterventionTimebasebiophysical propertiescancer cellcancer preventioncancer therapycancer typedriving forcegenome integritygenome-widehomologous recombinationhuman diseaseimaging geneticsimprovedpreventrecombinational repairrepair functionrepairedresponsetumor progressiontumorigenesisubiquitin-protein ligase
项目摘要
SUMMARY
Advancing our knowledge of pericentromeric heterochromatin repair is a high impact investment for improving
human health: heterochromatin is a poorly characterized region that comprises nearly a third of the human
genome; double-strand break (DSB) repair failures in this region affect not just specific genes, but also
genome-wide stability; and the likelihood of failures is high because of the many repeated sequences that
characterize this domain. Despite the foundational importance of characterizing these processes, DSB repair
mechanisms in heterochromatin are largely understudied. We discovered a specialized pathway that promotes
faithful homologous recombination (HR) repair in heterochromatin while preventing aberrant recombination,
effectively isolating heterochromatic repair sites to the nuclear periphery before strand invasion. We have
recently identified several components required for this process, including nuclear actin filaments (F-actin) an
myosins, and chromatin-associated nucleoporins, but the regulation and function of these components remain
poorly understood. Deregulation of heterochromatin repair is likely one of the most underestimated and
powerful sources of tumorigenesis, and identifying the components involved is essential for understanding
cancer etiology and developing more effective strategies for therapeutic intervention. Our central hypothesis is
that F-actin, myosins, nucleoplasmic nucleoporins, and phase separation are essential regulators of
heterochromatin repair dynamics, and that SUMOylation participates in coordinating their function repair
progression. We will combine a wealth of super resolution imaging, genetic and biochemical approaches to
investigate the molecular mechanisms involved in these process. Expected positive outcomes of this research
include the systematic identification of the molecular machinery that protects heterochromatin from massive
genome rearrangements, enabling successful completion of HR repair. These studies are also expected to
illuminate missing links between nuclear architecture and dynamics, phase separation, repair progression, and
the stability of repeated DNA sequences. These results will have an important positive impact by identifying
crucial safeguard mechanisms used by normal cells to protect the genome from environmental threats.
Mutations in these pathways result in genome instability, tumorigenesis, and reduced life span. Thus, we
expect that the proposed studies and future research will trigger exciting advancements in the prevention, early
detection, and treatment of cancer and other human diseases associated with genome instability and aging-
related disorders.
总结
提高我们对着丝粒周围异染色质修复的认识是一项高影响力的投资,
人类健康:异染色质是一个特征性很差的区域,占人类染色体的近三分之一。
基因组;该区域的双链断裂(DSB)修复失败不仅影响特定基因,
全基因组的稳定性;失败的可能性很高,因为许多重复的序列,
描述这个领域。尽管表征这些过程的基础重要性,DSB修复
异染色质中的机制在很大程度上未被研究。我们发现了一种特殊的途径,
异染色质中的忠实同源重组(HR)修复,同时防止异常重组,
在链侵入之前有效地将异染色质修复位点隔离到核外围。我们有
最近确定了这一过程所需的几种成分,包括核肌动蛋白丝(F-肌动蛋白)和
肌球蛋白和染色质相关的核孔蛋白,但这些成分的调节和功能仍然存在
不太了解。异染色质修复的失调可能是最被低估的,
肿瘤发生的强大来源,识别所涉及的成分对于理解
癌症病因学和开发更有效的治疗干预策略。我们的核心假设是
F-肌动蛋白、肌球蛋白、核质核孔蛋白和相分离是
异染色质修复动力学,SUMO化参与协调其功能修复
进展我们将联合收割机结合大量的超分辨率成像、遗传学和生物化学方法,
研究参与这些过程的分子机制。本研究的预期积极成果
包括系统地鉴定保护异染色质不受大量
基因组重排,使成功完成HR修复。这些研究也有望
阐明核结构与动力学、相分离、修复进展之间缺失的联系,
重复DNA序列的稳定性。这些结果将产生重要的积极影响,
正常细胞用来保护基因组免受环境威胁的重要保护机制。
这些途径中的突变导致基因组不稳定、肿瘤发生和寿命缩短。因此我们
预计拟议的研究和未来的研究将引发令人兴奋的进展,在预防,早期
检测和治疗癌症和其他与基因组不稳定性和衰老相关的人类疾病-
相关疾病。
项目成果
期刊论文数量(0)
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Irene E Chiolo其他文献
Irene E Chiolo的其他文献
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{{ truncateString('Irene E Chiolo', 18)}}的其他基金
Role of nuclear architecture in the spatial and temporal dynamics of heterochromatin repair
核结构在异染色质修复时空动态中的作用
- 批准号:
9010835 - 财政年份:2015
- 资助金额:
$ 33.94万 - 项目类别:
Role of nuclear architecture in the spatial and temporal dynamics of heterochromatin repair
核结构在异染色质修复时空动态中的作用
- 批准号:
9145718 - 财政年份:2015
- 资助金额:
$ 33.94万 - 项目类别:
Roles of nuclear architecture and phase separation in heterochromatin repair dynamics
核结构和相分离在异染色质修复动力学中的作用
- 批准号:
10390198 - 财政年份:2015
- 资助金额:
$ 33.94万 - 项目类别:
Roles of nuclear architecture and phase separation in heterochromatin repair dynamics
核结构和相分离在异染色质修复动力学中的作用
- 批准号:
10263286 - 财政年份:2015
- 资助金额:
$ 33.94万 - 项目类别:
Dynamics of heterochromatin DNA repair: novel role of nuclear architecture
异染色质 DNA 修复动力学:核结构的新作用
- 批准号:
8639571 - 财政年份:2013
- 资助金额:
$ 33.94万 - 项目类别:
Dynamics of heterochromatin DNA repair: novel role of nuclear architecture
异染色质 DNA 修复动力学:核结构的新作用
- 批准号:
8446180 - 财政年份:2013
- 资助金额:
$ 33.94万 - 项目类别:
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