Molecular Recognition Principles, Engineering and Function of Neural Wiring Receptors

神经布线受体的分子识别原理、工程和功能

基本信息

  • 批准号:
    9884827
  • 负责人:
  • 金额:
    $ 34.95万
  • 依托单位:
  • 依托单位国家:
    美国
  • 项目类别:
  • 财政年份:
    2016
  • 资助国家:
    美国
  • 起止时间:
    2016-03-01 至 2022-02-28
  • 项目状态:
    已结题

项目摘要

 DESCRIPTION (provided by applicant): Neural connectivity, the collection of synapses wiring nervous system cells, is a major property of a nervous system, and a determinant of neural function. In humans, billions of neurons make trillions of synapses, and the proper function of this system depends on proper wiring. Incorrect wiring of neurons can lead to improper perception and various neurodevelopmental diseases. While it is generally accepted that the connectivity is determined by cell surface receptors that uniquely label neurons and mechanistically guide their wiring, we know a relatively few number of these receptors. Given the complexity of nervous systems, we need to discover more neural receptors and learn how they function, so as to be able to understand brain development and the physiology of diseases where neural wiring is central. To address this, we are working to reveal the identity and physiological function of cell surface receptors that uniquely label neurons and guide their wiring. Previously, using a biochemical approach (protein interaction screening), we have identified two protein families, Dprs and DIPs in Drosophila, that are determinants of neural connectivity, and are a unique case of an "interaction code" that likely guides synaptic pairing of neurons in the brain. Members of Dpr and DIP families bind each other not in a simple one-to-one fashion; each Dpr and DIP interacts with many DIPs and Dprs, a phenomenon we call "cross-reactivity", and mediates a unique set of interactions. In addition, we have discovered a secreted protein we have named common DIP (cDIP), which binds 21 out of 30 Dprs and DIPs, and likely has a regulatory function on Dpr/DIP-mediated neural connections. Here, we propose to reveal the molecular principles that establish this code, which includes 57 interactions, and study the biology of Dpr/DIP- guided synapse formation in vitro, in culture and in vivo. Our multi-faceted approach includes (1) a biophysical and structural characterization of the Dpr-DIP interactions, followed by engineering of Dprs and DIPs to create novel molecular affinities to be tested for novel neural connectivity in the Drosophila brain; (2) a cellular study of Dpr-DIP mediated adhesions and the effect of the common DIP on these cell adhesions; and (3) the creation of a cell-based system for studying the signaling of Dprs and DIPs via the TGF-β/BMP signaling pathway.
 描述(由申请人提供):神经连接,连接神经系统细胞的突触的集合,是神经系统的主要特性,也是神经功能的决定因素。在人类中,数十亿个神经元组成数万亿个突触,而这个系统的正常功能取决于正确的布线。不正确的神经元布线会导致不正确的感知和各种神经发育疾病。虽然人们普遍认为连接性是由细胞表面受体决定的,这些受体独特地标记神经元并机械地引导它们的布线,但我们知道的这些受体数量相对较少。考虑到神经系统的复杂性,我们需要发现更多的神经受体并了解它们的功能,以便能够了解大脑发育和神经布线是核心的疾病的生理学。为了解决这个问题,我们正在努力揭示细胞表面受体的身份和生理功能,这些受体独特地标记神经元并引导它们的布线。以前,使用生物化学方法(蛋白质相互作用筛选),我们已经确定了果蝇中的两个蛋白质家族,DIPs和DIPs,它们是神经连接的决定因素,并且是可能指导突触配对的“相互作用代码”的独特情况。 大脑中的神经元。Dpr和DIP家族的成员不是以简单的一对一的方式相互结合;每个Dpr和DIP与许多DIP和DIP相互作用,我们称之为“交叉反应性”的现象,并介导一组独特的相互作用。此外,我们还发现了一种分泌蛋白,我们将其命名为共同DIP(cDIP),它结合了30种Dpr和DIP中的21种,并且可能对Dpr/DIP介导的神经连接具有调节功能。在这里,我们建议揭示建立这种代码的分子原理,其中包括57个相互作用,并研究体外,培养和体内Dpr/DIP引导的突触形成的生物学。我们多方面的方法包括:(1)Dpr-DIP相互作用的生物物理和结构表征,随后是Dpr-DIP和DIP的工程化,以产生新的分子亲和力,用于测试果蝇脑中新的神经连接;(2)Dpr-DIP介导的粘附的细胞研究和共同DIP对这些细胞粘附的影响;以及(3)建立了一个基于细胞的系统,用于研究通过TGF-β/BMP信号传导途径的DIFFERENTIAL和DIFFERENTIAL信号传导。

项目成果

期刊论文数量(2)
专著数量(0)
科研奖励数量(0)
会议论文数量(0)
专利数量(0)
Endocytosis in the axon initial segment maintains neuronal polarity.
轴突初始段中的内吞作用保持神经元极性。
  • DOI:
    10.1038/s41586-022-05074-5
  • 发表时间:
    2022-09
  • 期刊:
  • 影响因子:
    64.8
  • 作者:
    Eichel, Kelsie;Uenaka, Takeshi;Belapurkar, Vivek;Lu, Rui;Cheng, Shouqiang;Pak, Joseph S.;Taylor, Caitlin A.;Sudhof, Thomas C.;Malenka, Robert;Wernig, Marius;Ozkan, Engin;Perrais, David;Shen, Kang
  • 通讯作者:
    Shen, Kang
Finally on Track: Interactions of Off-Track with Plex-Sema Pathway and Glycosaminoglycans.
终于步入正轨:偏离轨道与 Plex-Sema 途径和糖胺聚糖的相互作用。
  • DOI:
    10.1016/j.str.2020.04.014
  • 发表时间:
    2020
  • 期刊:
  • 影响因子:
    0
  • 作者:
    Cheng,Shouqiang;Özkan,Engin
  • 通讯作者:
    Özkan,Engin
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Engin Ozkan其他文献

Engin Ozkan的其他文献

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{{ truncateString('Engin Ozkan', 18)}}的其他基金

Molecular Recognition Principles, Engineering and Function of Neural Wiring Receptors
神经布线受体的分子识别原理、工程和功能
  • 批准号:
    9083633
  • 财政年份:
    2016
  • 资助金额:
    $ 34.95万
  • 项目类别:
Control of neural circuit assembly by cell surface protein interactions
通过细胞表面蛋白质相互作用控制神经回路组装
  • 批准号:
    10565959
  • 财政年份:
    1990
  • 资助金额:
    $ 34.95万
  • 项目类别:
Control of neural circuit assembly by cell surface protein interactions
通过细胞表面蛋白质相互作用控制神经回路组装
  • 批准号:
    10443123
  • 财政年份:
    1990
  • 资助金额:
    $ 34.95万
  • 项目类别:

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