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中文摘要
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描述(由申请人提供):细胞核是真核细胞的内部庇护所,将遗传信息保存在核膜(NE)中。NE由两个同心双膜层组成,在特定位置融合形成由核孔复合物(NPC)占据的圆形开口。作为进出细胞核的唯一通道,鼻咽癌在细胞稳态中起着至关重要的作用,但它不仅仅是一个运输细胞器。我们开始认识到,NPC也可以作为组织细胞核的参考点,并可能在基因调控中发挥关键作用。本研究计划的重点是确定巨大的~50 MDa NPC的分子结构。实现这一目标将为探究其在运输、基因调控和核组织中的无数功能提供结构基础。重要的是,NPC及其成分的异常功能是许多人类疾病的主要原因,包括白血病、其他癌症、自身免疫性疾病、心肌病和各种病毒感染。NPC是一种模块化结构,由大约30种不同的蛋白质组成,即所谓的核孔蛋白,它们围绕中央8倍旋转轴排列成多个副本。2-10个核孔蛋白的亚复合物按层次构成鼻咽癌。其中的两个亚复合物,异质的Y-和nic96 -复合物,组织了大部分的结构核孔蛋白,并建立了NPC的稳定支架。因此,这两个子综合体是该提案的主要焦点。一旦两者都得到了充分的结构表征,NPC的支架结构就有可能以高可信度生成。该提案围绕四个目标进行组织。目的1 -普遍保守的七聚y配合物核的结构表征。575 kDa的y复合体是NPC建筑脚手架的关键单元。基于最近发表的对y型复合体片段的研究,现在可以对整个复合体进行结构表征。将采用晶体学和电子显微镜相结合的方法。目的2 -物种特异性y复合物延伸的结构表征。人体y复合物包含另外三种蛋白质,其功能作用包括NPC结构和组装。这些蛋白质将在结构上与y复合物的核心成分进行复杂的研究。目的3 - Nic96配合物的结构表征。Nic96复合物仅部分表征,但它与y复合物具有共同的祖先。人们普遍认为,阐明Nic96复合体的结构至关重要,因为它是除了y复合体之外的NPC支架结构的第二大组成部分。目标4 - NPC和交互组的组装结构。NPC子复合体必须相互作用才能形成NPC的高阶组合,但关于这些子复合体之间的接触信息仍然不完整。为了解决这一问题,将生成一个基于酵母-双杂交的相互作用组,对所有核孔蛋白之间的二元相互作用进行采样。
英文摘要
DESCRIPTION (provided by applicant): The nucleus is the inner sanctuary of the eukaryotic cell, keeping the genetic information enclosed by the nuclear envelope (NE). The NE consists of two concentric membrane bilayers fused at specific sites to form circular openings occupied by the nuclear pore complex (NPC). As the only gateway into and out of the nucleus, the NPC plays a critical role in cellular homeostasis, but it is more than a transport organelle. We are beginning to appreciate that the NPC also serves as a reference point to organize the nucleus and is likely to play a pivotal role in gene regulation. This research program focuses on determining the molecular architecture of the enormous ~50 MDa NPC. Attaining this goal will provide a structural basis to interrogate its myriad functions in transport, gene regulation, and nuclear organization. Importantly, aberrant function of the NPC and its constituents is a primary cause of many human diseases, including leukemia, other cancers, autoimmune diseases, cardiomyopathies, and a variety of viral infections. The NPC is a modular structure, composed of ~30 different proteins, so-called nucleoporins that arrange in multiple copies around a central eightfold rotational axis. Subcomplexes of 2-10 nucleoporins hierarchically build up the NPC. Two of these subcomplexes, the heteromeric Y- and Nic96-complexes, organize the majority of architectural nucleoporins and establish the stable scaffold of the NPC. Consequently, these two subcomplexes are the main focus of this proposal. Once both are fully structurally characterized, the scaffold structure of the NPC can likely be generated with high confidence. This proposal is organized around four aims. Aim 1 - Structural characterization of the universally conserved, heptameric Y-complex core. The 575 kDa Y-complex is the pivotal NPC architectural scaffold unit. Building on recently published work on fragments of the Y-complex it is now feasible to structurally characterize the entire complex. A combined approach using crystallographic and electron microscopic methods will be employed. Aim 2 - Structural characterization of the species-specific Y-complex extensions. The human Y-complex contains three additional proteins, whose functional roles include NPC architecture and assembly. These proteins will be studied structurally in complex with the core components of the Y-complex. Aim 3 - Structural characterization of the Nic96 complex. The Nic96 complex is only partially characterized, but it shares common ancestry with the Y-complex. It is widely accepted that it is pivotal to elucidate the Nic96 complex structure as it is, beside the Y-complex, the second large building block of the NPC scaffold structure. Aim 4 - Assembly structure of the NPC and interactome. NPC subcomplexes have to interact to form the higher order assembly of the NPC, yet information on these inter-subcomplex contacts is still incomplete. To solve this problem, a yeast-two-hybrid based interactome will be generated sampling binary interactions between all nucleoporins. PUBLIC HEALTH RELEVANCE: This study will lead to a structural understanding of the massive nuclear pore complex (NPC), the sole transport channel to and from the cell's nucleus and the passage route for many pathogenic virus, including HIV. This knowledge will open mid-term possibilities to influence transport properties, possibly to block viral entry to the nucleus. The NPC is also involved in a myriad of other human diseases, including cancer and cardiomyopathies, thus a molecular understanding of these mechanisms may provide new long-term therapeutic strategies.
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Mechanism of nuclear pore passage of the HIV-1 capsid
Structure-Function of Nucleo-Cytoplasmic Communication
Structure-Function of Nucleo-Cytoplasmic Communication
Structure-Function of Nucleo-Cytoplasmic Communication
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Autoimmune diseases therapies: variations on the microbiome in rheumatoid arthritis