记忆抑制的遗传学和分子生物学。

IF 3.5 3区 医学 Q1 CLINICAL NEUROLOGY Neuroscientist Pub Date : 2024-06-01 Epub Date: 2022-12-15 DOI:10.1177/10738584221138527
Nathaniel C Noyes, Ronald L Davis
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引用次数: 0

摘要

大脑不仅设计有助于形成记忆的分子和细胞过程,还设计有抑制记忆形成和保留的分子和电池过程。考虑到每个人在日常活动中经历的大量信息,以及这些信息中的大部分与时间无关,后一个过程对于高效的记忆管理系统至关重要。因此,效率决定了大脑应该有选择最关键信息进行存储的过程,并抑制不相关的信息,或者在以后逃离最初的过滤器时忘记这些信息。这种记忆抑制分子和过程是通过遗传或药理学损伤来揭示的,这些损伤导致记忆表达增强。我们在此回顾最近发现的主要记忆抑制分子和过程。正如预期的那样,它们是多样化的,因为大脑是复杂的,并采用许多不同的策略和机制来形成记忆。它们包括小的非编码RNA的基因抑制作用、蛋白质合成的抑制剂、cAMP介导的基因表达途径、正常遗忘的细胞间和细胞内信号通路等。深入了解记忆抑制分子和过程对于充分理解大脑如何形成、稳定和检索记忆以及揭示大脑疾病如何破坏记忆是必要的。
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Genetics and Molecular Biology of Memory Suppression.

The brain is designed not only with molecules and cellular processes that help to form memories but also with molecules and cellular processes that suppress the formation and retention of memory. The latter processes are critical for an efficient memory management system, given the vast amount of information that each person experiences in their daily activities and that most of this information becomes irrelevant with time. Thus, efficiency dictates that the brain should have processes for selecting the most critical information for storage and suppressing the irrelevant or forgetting it later should it escape the initial filters. Such memory suppressor molecules and processes are revealed by genetic or pharmacologic insults that lead to enhanced memory expression. We review here the predominant memory suppressor molecules and processes that have recently been discovered. They are diverse, as expected, because the brain is complex and employs many different strategies and mechanisms to form memories. They include the gene-repressive actions of small noncoding RNAs, repressors of protein synthesis, cAMP-mediated gene expression pathways, inter- and intracellular signaling pathways for normal forgetting, and others. A deep understanding of memory suppressor molecules and processes is necessary to fully comprehend how the brain forms, stabilizes, and retrieves memories and to reveal how brain disorders disrupt memory.

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来源期刊
Neuroscientist
Neuroscientist 医学-临床神经学
CiteScore
11.50
自引率
0.00%
发文量
68
期刊介绍: Edited by Stephen G. Waxman, The Neuroscientist (NRO) reviews and evaluates the noteworthy advances and key trends in molecular, cellular, developmental, behavioral systems, and cognitive neuroscience in a unique disease-relevant format. Aimed at basic neuroscientists, neurologists, neurosurgeons, and psychiatrists in research, academic, and clinical settings, The Neuroscientist reviews and updates the most important new and emerging basic and clinical neuroscience research.
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