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3
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内在兴奋性的调节:学习和记忆、衰老和阿尔茨海默病以及遗传多样性的作用。

Regulation of intrinsic excitability: Roles for learning and memory, aging and Alzheimer's disease, and genetic diversity.

机构信息

The Jackson Laboratory, Bar Harbor, ME 04609, USA.

出版信息

Neurobiol Learn Mem. 2019 Oct;164:107069. doi: 10.1016/j.nlm.2019.107069. Epub 2019 Aug 20.

DOI:10.1016/j.nlm.2019.107069
PMID:31442579
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC6752224/
Abstract

Plasticity of intrinsic neuronal excitability facilitates learning and memory across multiple species, with aberrant modulation of this process being linked to the development of neurological symptoms in models of cognitive aging and Alzheimer's disease. Learning-related increases in intrinsic excitability of neurons occurs in a variety of brain regions, and is generally thought to promote information processing and storage through enhancement of synaptic throughput and induction of synaptic plasticity. Experience-dependent changes in intrinsic neuronal excitability rely on activity-dependent gene expression patterns, which can be influenced by genetic and environmental factors, aging, and disease. Reductions in baseline intrinsic excitability, as well as aberrant plasticity of intrinsic neuronal excitability and in some cases pathological hyperexcitability, have been associated with cognitive deficits in animal models of both normal cognitive aging and Alzheimer's disease. Genetic factors that modulate plasticity of intrinsic excitability likely underlie individual differences in cognitive function and susceptibility to cognitive decline. Thus, targeting molecular mediators that either control baseline intrinsic neuronal excitability, subserve learning-related intrinsic neuronal plasticity, and/or promote resilience may be a promising therapeutic strategy for maintaining cognitive function in aging and disease. In this review, we discuss the complementary relationship between intrinsic excitability and learning, with a particular focus on how this relationship varies as a function of age, disease state, and genetic make-up, and how targeting these factors may help to further elucidate our understanding of the role of intrinsic excitability in cognitive function and cognitive decline.

摘要

内在神经元兴奋性的可塑性促进了多种物种的学习和记忆,而该过程的异常调节与认知衰老和阿尔茨海默病模型中神经症状的发展有关。神经元内在兴奋性的与学习相关的增加发生在各种脑区,通常被认为通过增强突触吞吐量和诱导突触可塑性来促进信息处理和存储。内在神经元兴奋性的经验依赖性变化依赖于活性依赖性基因表达模式,这些模式可受遗传和环境因素、衰老和疾病的影响。基线内在兴奋性的降低,以及内在神经元兴奋性的异常可塑性,在某些情况下病理性的过度兴奋,与正常认知衰老和阿尔茨海默病动物模型中的认知缺陷有关。调节内在兴奋性可塑性的遗传因素可能是认知功能个体差异和对认知下降易感性的基础。因此,针对控制基线内在神经元兴奋性、支持与学习相关的内在神经元可塑性和/或促进恢复力的分子介质可能是维持衰老和疾病期间认知功能的一种有前途的治疗策略。在这篇综述中,我们讨论了内在兴奋性和学习之间的互补关系,特别关注这种关系如何随年龄、疾病状态和遗传构成而变化,以及如何针对这些因素可以帮助我们进一步阐明内在兴奋性在认知功能和认知下降中的作用。