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Complement emerges as a masterful regulator of CNS homeostasis, neural synaptic plasticity and cognitive function

机译:补体作为中枢神经系统稳态,神经突触可塑性和认知功能的熟练调节者而出现

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Growing evidence points to a previously elusive role of complement-modulated pathways in CNS development, neurogenesis and synaptic plasticity. Distinct complement effectors appear to play a multifaceted role in brain homeostasis by regulating synaptic pruning in the retinogeniculate system and sculpting functional neural circuits both in the developing and adult mammalian brain. A recent study by Perez-Alcazar et al. (2014) provides novel insights into this intricate interplay between complement and the dynamically regulated brain synaptic circuitry, by reporting that mice deficient in C3 exhibit enhanced hippocampus-dependent spatial learning and cognitive performance. This behavioral pattern is associated with an impact of C3 on the functional capacity of glutamatergic synapses, supporting a crucial role for complement in excitatory synapse elimination in the hippocampus. These findings add a fresh twist to this rapidly evolving research field, suggesting that discrete complement components may differentially modulate synaptic connectivity by wiring up with diverse neural effectors in different regions of the brain. The emerging role of complement in synaptogenesis and neural network plasticity opens new conceptual avenues for considering complement interception as a potential therapeutic modality for ameliorating progressive cognitive impairment in age-related, debilitating brain diseases with a prominent inflammatory signature. (C) 2014 Elsevier Inc. All rights reserved.
机译:越来越多的证据表明,补体调节途径在中枢神经系统发育,神经发生和突触可塑性中起着难以捉摸的作用。不同的补体效应物似乎通过调节视网膜生成系统中的突触修剪并在发育中的和成年哺乳动物的大脑中雕刻功能性神经回路而在脑稳态中发挥多方面的作用。 Perez-Alcazar等人的最新研究。 (2014)通过报告缺乏C3的小鼠表现出增强的海马依赖性空间学习和认知能力,提供了关于补体与动态调节的脑突触电路之间这种复杂相互作用的新颖见解。这种行为模式与C3对谷氨酸能突触的功能能力的影响有关,支持补体在海马兴奋性突触消除中的关键作用。这些发现为这个迅速发展的研究领域增加了新的转折,表明离散补体成分可能通过与大脑不同区域的各种神经效应器连接而有差异地调节突触连接性。补体在突触发生和神经网络可塑性中的新兴作用为将补体拦截作为缓解年龄相关,使人衰弱,具有明显炎症特征的脑疾病的进行性认知障碍的一种潜在治疗方式开辟了新的概念途径。 (C)2014 Elsevier Inc.保留所有权利。

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