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Latrophilins Function as Heterophilic Cell-adhesion Molecules by Binding to Teneurins

机译:Latrophilins通过结合Teneurins充当嗜异性细胞粘附分子

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摘要

Latrophilin-1, -2, and -3 are adhesion-type G protein-coupled receptors that are auxiliary α-latrotoxin receptors, suggesting that they may have a synaptic function. Using pulldowns, we here identify teneurins, type II transmembrane proteins that are also candidate synaptic cell-adhesion molecules, as interactors for the lectin-like domain of latrophilins. We show that teneurin binds to latrophilins with nanomolar affinity and that this binding mediates cell adhesion, consistent with a role of teneurin binding to latrophilins in trans-synaptic interactions. All latrophilins are subject to alternative splicing at an N-terminal site; in latrophilin-1, this alternative splicing modulates teneurin binding but has no effect on binding of latrophilin-1 to another ligand, FLRT3. Addition to cultured neurons of soluble teneurin-binding fragments of latrophilin-1 decreased synapse density, suggesting that latrophilin binding to teneurin may directly or indirectly influence synapse formation and/or maintenance. These observations are potentially intriguing in view of the proposed role for Drosophila teneurins in determining synapse specificity. However, teneurins in Drosophila were suggested to act as homophilic cell-adhesion molecules, whereas our findings suggest a heterophilic interaction mechanism. Thus, we tested whether mammalian teneurins also are homophilic cell-adhesion molecules, in addition to binding to latrophilins as heterophilic cell-adhesion molecules. Strikingly, we find that although teneurins bind to each other in solution, homophilic teneurin-teneurin binding is unable to support stable cell adhesion, different from heterophilic teneurin-latrophilin binding. Thus, mammalian teneurins act as heterophilic cell-adhesion molecules that may be involved in trans-neuronal interaction processes such as synapse formation or maintenance.
机译:Latrophilin-1,-2和-3是粘附型G蛋白偶联受体,是辅助α-latrotoxin受体,表明它们可能具有突触功能。使用下拉列表,我们在这里确定Teneurins,II型跨膜蛋白,它也是候选的突触细胞粘附分子,作为Latrophilins的凝集素样结构域的相互作用体。我们表明,teneurin以纳摩尔亲和力结合到latrophilins,并且这种结合介导了细胞粘附,与teneurin在反突触相互作用中结合latrophilins的作用一致。所有的亲脂蛋白都在N-末端位点进行选择性剪接。在latrophilin-1中,此替代性剪接调节teneurin结合,但对latrophilin-1与另一种配体FLRT3的结合没有影响。向培养的神经元中添加可溶性Latrophilin-1的Teneurin结合片段会降低突触密度,这表明Latrophilin与Teneurin的结合可能直接或间接影响突触的形成和/或维持。考虑到果蝇Teneurins在确定突触特异性中的作用,这些观察结果可能令人感兴趣。然而,果蝇中的Teneurins被认为是具有亲和力的细胞粘附分子,而我们的发现表明了亲和力的相互作用机制。因此,我们测试了哺乳动物腱蛋白是否除了作为亲性细胞粘附分子的亲脂性蛋白结合外,是否也属于亲细胞粘附分子。令人惊讶地,我们发现,尽管腱蛋白在溶液中彼此结合,但与异源腱蛋白-拉特龙蛋白结合不同,同质腱蛋白-腱蛋白的结合不能支持稳定的细胞粘附。因此,哺乳动物腱蛋白充当了可能参与跨神经元相互作用过程(如突触形成或维持)的嗜异性细胞粘附分子。

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