Investigating the role of AAA+-ATPases in peroxisome biology
研究 AAA -ATP 酶在过氧化物酶体生物学中的作用
基本信息
- 批准号:10245266
- 负责人:
- 金额:$ 24.9万
- 依托单位:
- 依托单位国家:美国
- 项目类别:
- 财政年份:2017
- 资助国家:美国
- 起止时间:2017-05-01 至 2022-08-31
- 项目状态:已结题
- 来源:
- 关键词:ATP phosphohydrolaseAdaptor Signaling ProteinArchitectureAutophagocytosisBile AcidsBiochemicalBiochemical GeneticsBiochemistryBiogenesisBiological AssayBiologyBrainCellsComplexCryoelectron MicroscopyCrystallizationCytosolDefectDevelopmentDiseaseDissectionElectron MicroscopyEncapsulatedEndoplasmic ReticulumEnvironmentEnzymesEukaryotaFluorescence MicroscopyFunctional disorderGenesGoalsGrowthHealthHomeostasisHumanHydrogen PeroxideIn VitroKnowledgeLipidsLiver DysfunctionLongevityMaintenanceMass Spectrum AnalysisMembraneMembrane BiologyMembrane Protein TrafficMembrane ProteinsMentorsMentorshipMetabolicMetabolismMicroscopyMitochondriaModelingMolecularMotorMutateMutationMyelin SheathNerve DegenerationOrganellesPHEX proteinPhenotypePlayProcessProtein ImportProteinsQuality ControlReactionRegulationResearchResourcesRoleSNAP receptorStructureSyndromeSystemTechniquesTestingTherapeutic InterventionTrainingTranslatingVery Long Chain Fatty Aciddevelopmental diseasedisease-causing mutationeffective therapyfascinatehigh throughput screeningimprovednovelnovel therapeutic interventionperoxisomeperoxisome membraneprogramsreceptorreconstitutionresponseskillstrafficking
项目摘要
Project Summary: Peroxisomes are ubiquitous, membrane-bound organelles that encapsulate specialized
metabolic reactions, typically including those that produce hydrogen peroxide as a byproduct. In humans,
where peroxisomes breakdown very long chain fatty acids and synthesize precursors of bile acids and myelin
sheath lipids, defects in peroxisomes cause Peroxisome Biogenesis Disorders (PBDs), characterized by
neuronal degeneration, liver dysfunction, and decreased lifespan. There are currently no treatments for PBDs,
and our understanding of peroxisomes in human health is hindered by our limited understanding of the
biochemical mechanisms of peroxisome molecular membrane biology.
De novo biogenesis of peroxisomes requires approximately 30 dedicated Pex proteins. During this
process, the peroxisome membrane and membrane proteins traffic through the endoplasmic reticulum, while
the matrix proteins are imported fully folded from the cytosol. The majority of PBDs are caused by mutations in
Pex1 and Pex6, two AAA+-ATPase motor proteins that perform an uncharacterized task crucial for peroxisome
matrix protein import. A complete understanding of Pex1 and Pex6 architecture, substrates, processing
mechanism, and function at the peroxisome would reveal new mechanistic details of peroxisome formation,
novel therapeutic strategies, and expand our understanding of the role of peroxisomes in disease.
As a Miller Fellow in Dr. Andreas Martin's lab, I used in vitro biochemistry and electron microscopy to
determine the architecture of the active Pex1/Pex6 complex and its interaction and regulation by its membrane
tether protein Pex15. This represents the first structural and biochemical characterization of Pex1/Pex6 and a
unique molecular handle to dissect the energy-dependent steps of peroxisome assembly. In this proposal I will
expand my research to understand the function of Pex1/Pex6 in the context of the cell and peroxisome
dysfunction in the context of cellular homeostasis. In Aim 1, with the mentorship of Dr. Martin, an expert on
AAA+-ATPase mechanisms, I propose to identify the substrates of Pex1/Pex6 and determine their processing
mechanism. In Aim 2, with mentorship from Dr. Schekman, an expert in biochemical dissections of membrane
trafficking, I will determine Pex1/Pex6 function in peroxisome matrix protein import using a novel cell-free
reconstitution. Finally, I propose to determine the cellular response to induced peroxisome dysfunction and
identify novel proteins required for peroxisome maintenance.
With the support of my mentors and the greater research environment at UC Berkeley, I will receive
training in mass spectrometry, cryo-electron microscopy, cell-free reconstitutions, fluorescence microscopy,
and high throughput screening. These skills will help me bridge my background in biochemistry with my
fascination with organelle biology to build a successful independent research program investigating the
biochemical mechanisms of peroxisome biology.
项目摘要:过氧化物体是普遍存在的、膜结合的细胞器,它包裹着特化的
代谢反应,通常包括产生过氧化氢作为副产物的反应。在人类身上,
在那里,过氧化物体分解很长的链脂肪酸并合成胆汁酸和髓鞘的前体
鞘脂质,过氧化物体中的缺陷会导致过氧化物体生物发生障碍(PBDS),其特征是
神经元变性,肝功能障碍,寿命缩短。目前还没有针对多发性骨髓瘤的治疗方法,
而我们对过氧酶体在人类健康中的理解受到了限制,因为我们对
过氧化物体分子膜生物学的生化机制。
过氧化物酶体的从头生物发生需要大约30个专门的Pex蛋白。在此期间
过程中,过氧化物体膜和膜蛋白通过内质网运输,而
基质蛋白是从胞浆中完全折叠的。大多数多发性骨髓疾病是由基因突变引起的
Pex1和Pex6,两种AAA+-ATPase马达蛋白,执行对过氧化酶体至关重要的未知任务
基质蛋白进口。对Pex1和Pex6的架构、基板、工艺有全面的了解
过氧酶体的机制和功能将揭示过氧酶体形成的新的机制细节,
新的治疗策略,并扩大我们对过氧化物体在疾病中的作用的理解。
作为安德烈亚斯·马丁博士实验室的米勒研究员,我使用体外生物化学和电子显微镜
确定活性Pex1/Pex6复合体的结构及其膜的相互作用和调节
系绳蛋白Pex15。这代表了Pex1/Pex6和一个
独特的分子手柄,用于剖析过氧化物体组装的能量依赖步骤。在这项提议中,我将
扩展我的研究以了解Pex1/Pex6在细胞和过氧化物酶体内的功能
细胞内稳态背景下的功能障碍。在目标1中,在马丁博士的指导下,一位
AAA+-ATPase机制,我建议鉴定Pex1/Pex6的底物并确定它们的加工
机制。在目标2中,在Schekman博士的指导下,Schekman博士是一位膜生化解剖专家
运输,我将确定Pex1/Pex6功能在使用一种新的无细胞的过氧化物酶体基质蛋白输入
重建。最后,我建议确定细胞对诱导的过氧酶体功能障碍的反应和
确定维持过氧化物酶体所需的新蛋白质。
在我导师的支持和加州大学伯克利分校更好的研究环境下,我将获得
质谱学、低温电子显微镜、无细胞重组、荧光显微镜、
和高通量筛选。这些技能将帮助我在生物化学方面的背景与我的
对细胞器生物学的痴迷,建立了一个成功的独立研究计划,研究
过氧化物体生物学的生化机制。
项目成果
期刊论文数量(0)
专著数量(0)
科研奖励数量(0)
会议论文数量(0)
专利数量(0)
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Brooke Meghan Gardner其他文献
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{{ truncateString('Brooke Meghan Gardner', 18)}}的其他基金
Investigating the mechanisms of peroxisome homeostasis
研究过氧化物酶体稳态机制
- 批准号:
10680467 - 财政年份:2022
- 资助金额:
$ 24.9万 - 项目类别:
Investigating the mechanisms of peroxisome homeostasis
研究过氧化物酶体稳态机制
- 批准号:
10808484 - 财政年份:2022
- 资助金额:
$ 24.9万 - 项目类别:
Investigating the role of AAA+-ATPases in peroxisome biology
研究 AAA -ATP 酶在过氧化物酶体生物学中的作用
- 批准号:
10001560 - 财政年份:2017
- 资助金额:
$ 24.9万 - 项目类别:














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