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The role of protein N-glycosylation in neural transmission

机译:蛋白质N-糖基化在神经传递中的作用

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Recent studies have explored the function of N-linked glycosylation in the nervous system, demonstrating essential roles of carbohydrate structures in neural development. The function of N-glycans in neural physiology remains less understood; however, increasing evidence indicates that N-glycans can play specific modulatory roles controlling neural transmission and excitability of neural circuits. These roles are mediated via effects on synaptic proteins involved in neurotransmitter release, transporters that regulate nerotransmitter concentrations, neurotransmitter receptors, as well as via regulation of proteins that control excitability and response to milieu stimuli, such as voltage-gated ion channels and transient receptor potential channels, respectively. Sialylated N-glycan structures are among the most potent modulators of cell excitability, exerting prominent effects on voltage gated Na+ and K+ channels. This modulation appears to be underlain by complex molecular mechanisms involving electrostatic effects, as well as interaction modes based on more specific steric effects and interactions with lectins and other molecules. Data also indicate that particular features of N-glycans, such as their location on a protein and structural characteristics, can be specifically associated with the effect of glycosylation. These features and their functional implications can vary between different cell types, which highlight the importance of in vivo analyses of glycan functions. Experimental challenges are associated with the overwhelming complexity of the nervous system and glycosylation pathways in vertebrates, and thus model organisms like Drosophila should help elucidate evolutionarily conserved mechanisms underlying glycan functions. Recent studies supported this notion and shed light on functions of several glycosylation genes involved in the regulation of the nervous system.
机译:最近的研究探索了神经系统中N-联糖基化的功能,证明了碳水化合物结构在神经发育中的重要作用。 N-聚糖在神经生理学中的功能尚不清楚。然而,越来越多的证据表明,N-聚糖可以发挥特定的调节作用,控制神经传递和神经回路的兴奋性。这些作用通过对涉及神经递质释放的突触蛋白的影响,调节神经递质浓度的转运蛋白,神经递质受体以及通过调节控制兴奋性和对环境刺激的响应的蛋白质的调节来介导,例如电压门控离子通道和瞬时受体电位渠道。唾液酸化的N-聚糖结构是最有效的细胞兴奋性调节剂之一,对电压门控的Na +和K +通道产生显着影响。这种调节似乎是由涉及静电效应的复杂分子机制以及基于更具体的空间效应以及与凝集素和其他分子的相互作用的相互作用模式所决定的。数据还表明,N-聚糖的特定特征,例如它们在蛋白质上的位置和结构特征,可以与糖基化作用特别相关。这些特征及其功能含义在不同的细胞类型之间可能有所不同,这突出了对聚糖功能进行体内分析的重要性。实验挑战与脊椎动物的神经系统和糖基化途径的压倒性复杂性相关,因此像果蝇这样的模型生物应有助于阐明聚糖功能的进化保守机制。最近的研究支持这一观点,并阐明了参与神经系统调节的几种糖基化基因的功能。

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