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小家鼠神经回路与行为的遗传学剖析

Genetic dissection of neural circuits and behavior in Mus musculus.

作者信息

Havekes Robbert, Abel Ted

机构信息

Department of Biology, University of Pennsylvania, Philadelphia, PA, USA.

出版信息

Adv Genet. 2009;65:1-38. doi: 10.1016/S0065-2660(09)65001-X.

DOI:10.1016/S0065-2660(09)65001-X
PMID:19615530
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC2861997/
Abstract

One of the major challenges in the field of neurobiology is to elucidate the molecular machinery that underlies the formation and storage of memories. For many decades, genetic studies in the fruit fly (Drosophila melanogaster) have provided insight into the role of specific genes underlying memory storage. Although these pioneering studies were groundbreaking, a transition to a mammalian system more closely resembling the human brain is critical for the translation of basic research findings into therapeutic strategies in humans. Because the mouse (Mus musculus) shares the complex genomic and neuroanatomical organization of mammals and there is a wealth of molecular tools that are available to manipulate gene function in mice, the mouse has become the primary model for research into the genetic basis of mammalian memory. Another major advantage of mouse research is the ability to examine in vivo electrophysiological processes, such as synaptic plasticity and neuronal firing patterns during behavior (e.g., the analysis of place cell activity). The focus on mouse models for memory research has led to the development of sophisticated behavioral protocols capable of exploring the role of particular genes in distinct phases of learning and memory formation, which is one of the major accomplishments of the past decade. In this chapter, we will give an overview of several state of the art genetic approaches to study gene function in the mouse brain in a spatially and temporally restricted fashion.

摘要

神经生物学领域的主要挑战之一是阐明记忆形成和存储背后的分子机制。几十年来,对果蝇(黑腹果蝇)的遗传学研究为洞察记忆存储背后特定基因的作用提供了思路。尽管这些开创性研究具有里程碑意义,但向更类似于人类大脑的哺乳动物系统过渡对于将基础研究成果转化为人类治疗策略至关重要。由于小鼠(小家鼠)具有哺乳动物复杂的基因组和神经解剖结构,并且有大量可用于操纵小鼠基因功能的分子工具,小鼠已成为研究哺乳动物记忆遗传基础的主要模型。小鼠研究的另一个主要优势是能够在体内检查电生理过程,例如行为过程中的突触可塑性和神经元放电模式(例如,位置细胞活动分析)。对小鼠记忆研究模型的关注导致了复杂行为方案的发展,这些方案能够探索特定基因在学习和记忆形成不同阶段的作用,这是过去十年的主要成就之一。在本章中,我们将概述几种先进的遗传学方法,以便在空间和时间上受限的方式研究小鼠大脑中的基因功能。