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从现有成分中构建更智能的神经元信号复合物:动物进化过程中如何获得调节修饰:棕榈酰化依赖性调节 AMPA 型离子型谷氨酸受体的进化。

Smarter neuronal signaling complexes from existing components: how regulatory modifications were acquired during animal evolution: evolution of palmitoylation-dependent regulation of AMPA-type ionotropic glutamate receptors.

机构信息

Shriners Hospitals Pediatric Research Center and Department of Anatomy and Cell Biology, Temple University Medical School, Philadelphia, PA, USA.

出版信息

Bioessays. 2013 Nov;35(11):929-39. doi: 10.1002/bies.201300076. Epub 2013 Aug 14.

Abstract

Neurons of organisms with complex and flexible behavior, especially humans, must precisely control protein localization and activity to support higher brain functions such as learning and memory. In contrast, simpler organisms generally have simpler individual neurons, less complex nervous systems and display more limited behaviors. Strikingly, however, many key neuronal proteins are conserved between organisms that have very different degrees of behavioral complexity. Here we discuss a possible mechanism by which conserved neuronal proteins acquired new attributes that were crucial in the evolution of complexity of nervous system structure and function. Specifically, we hypothesize that vertebrate-specific post-translational palmitoylation sites and PDZ-binding protein-protein interaction motifs act as gain-of-function mutations, increasing the regulatory potential of conserved proteins without affecting their core functions. We further hypothesize that the additional regulation of neurotransmitter receptors and other membrane proteins made possible by these sites and motifs is critical for the function of complex nervous systems.

摘要

具有复杂和灵活行为的生物的神经元,尤其是人类的神经元,必须精确控制蛋白质的定位和活性,以支持学习和记忆等更高的大脑功能。相比之下,较简单的生物体通常具有较简单的单个神经元、不太复杂的神经系统,并且表现出更有限的行为。然而,令人惊讶的是,许多关键的神经元蛋白在行为复杂性差异很大的生物体之间是保守的。在这里,我们讨论了一种可能的机制,通过这种机制,保守的神经元蛋白获得了新的属性,这些属性在神经系统结构和功能复杂性进化中至关重要。具体来说,我们假设脊椎动物特异性的翻译后棕榈酰化位点和 PDZ 结合蛋白-蛋白相互作用模体充当获得功能突变,增加了保守蛋白的调节潜力,而不影响其核心功能。我们进一步假设,这些位点和模体使神经递质受体和其他膜蛋白的额外调节成为复杂神经系统功能的关键。

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