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Protocadherins mediate dendritic self-avoidance in the mammalian nervous system

机译:原钙粘蛋白介导哺乳动物神经系统中的树突状自我回避

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摘要

Dendritic arborizations of many neurons are patterned by a process called self-avoidance, in which branches arising from a single neuron repel each other. By minimizing gaps and overlaps within the arborization, self-avoidance facilitates complete coverage of a neuron's territory by its neurites. Remarkably, some neurons that display self-avoidance interact freely with other neurons of the same subtype, implying that they discriminate self from non-self. Here we demonstrate roles for the clustered protocadherins (Pcdhs) in dendritic self-avoidance and selfon-self discrimination. The Pcdh locus encodes 58 related cadherin-like transmembrane proteins, at least some of which exhibit isoform-specific homophilic adhesion in heterologous cells and are expressed stochastically and combinatorially in single neurons. Deletion of all 22 Pcdh genes in the mouse γ-subcluster (Pcdhg genes) disrupts self-avoidance of dendrites in retinal starburst amacrine cells (SACs) and cerebellar Purkinje cells. Further genetic analysis of SACs showed that Pcdhg proteins act cell-autonomously during development, and that replacement of the 22 Pcdhg proteins with a single isoform restores self-avoidance. Moreover, expression of the same single isoform in all SACs decreases interactions among dendrites of neighbouring SACs (heteroneuronal interactions). These results suggest that homophilic Pcdhg interactions between sibling neurites (isoneuronal interactions) generate a repulsive signal that leads to self-avoidance. In this model, heteroneuronal interactions are normally permitted because dendrites seldom encounter a matched set of Pcdhg proteins unless they emanate from the same soma. In many respects, our results mirror those reported for Dscaml (Down syndrome cell adhesion molecule) in Drosophila: this complex gene encodes thousands of recognition molecules that exhibit stochastic expression and isoform-specific interactions, and mediate both self-avoidance and selfon-self discrimination. Thus, although insect Dscam and vertebrate Pcdh proteins share no sequence homology, they seem to underlie similar strategies for endowing neurons with distinct molecular identities and patterning their arborizations.
机译:许多神经元的树突状乔化通过称为自我回避的过程进行模式化,其中单个神经元产生的分支彼此排斥。通过最小化树状结构中的间隙和重叠,自我回避有助于神经元的神经突完全覆盖神经元的区域。值得注意的是,一些表现出自我回避的神经元可以与其他亚型的神经元自由地相互作用,这意味着它们将自我与非自我区分开。在这里,我们证明了簇原钙粘蛋白(Pcdhs)在树突回避和自我/非自我歧视中的作用。 Pcdh基因座编码58个相关的钙粘蛋白样跨膜蛋白,其中至少一些在异源细胞中表现出同工型特异性同质粘附,并在单个神经元中随机地和组合地表达。删除小鼠γ-亚簇中所有22个Pcdh基因(Pcdhg基因)会破坏视网膜星爆无长突细胞(SACs)和小脑浦肯野细胞中树突的自我避免。 SAC的进一步遗传分析表明,Pcdhg蛋白在发育过程中具有细胞自主作用,并且用单一同种型替代22种Pcdhg蛋白可恢复自我避免。此外,在所有SAC中表达相同的单一同工型会降低相邻SAC的树枝状分子之间的相互作用(异神经元相互作用)。这些结果表明,同胞神经突之间的同型Pcdhg相互作用(神经质相互作用)会产生排斥信号,从而导致自我回避。在此模型中,通常允许异神经元相互作用,因为树突很少会遇到一组匹配的Pcdhg蛋白,除非它们来自同一体。在许多方面,我们的结果都反映了果蝇中Dscaml(唐氏综合症细胞粘附分子)的报道:这个复杂的基因编码成千上万个具有随机表达和同工型特异性相互作用的识别分子,并介导自我回避和自我/非自我干预。自我歧视。因此,尽管昆虫Dscam和脊椎动物Pcdh蛋白没有序列同源性,但是它们似乎是赋予神经元不同分子身份并构图其树突化模式的相似策略的基础。

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  • 来源
    《Nature》 |2012年第7412期|p.517-521|共5页
  • 作者单位

    Center for Brain Science and Department of Molecular and Cellular Biology, Harvard University, 52 Oxford Street, Cambridge, Massachusetts 02138, USA;

    Center for Brain Science and Department of Molecular and Cellular Biology, Harvard University, 52 Oxford Street, Cambridge, Massachusetts 02138, USA;

    Department of Biochemistry and Molecular Biophysics, Columbia University Medical Center, 701 West 168th Street, New York, New York 10032, USA;

    Department of Biochemistry and Molecular Biophysics, Columbia University Medical Center, 701 West 168th Street, New York, New York 10032, USA;

    Center for Brain Science and Department of Molecular and Cellular Biology, Harvard University, 52 Oxford Street, Cambridge, Massachusetts 02138, USA;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);美国《生物学医学文摘》(MEDLINE);美国《化学文摘》(CA);
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