Gene Network Analysis in Amygdala following Taste Aversion Learning in Rats.

Neuroscience journal Pub Date : 2013-01-01 Epub Date: 2013-05-23 DOI:10.1155/2013/739764
Siva K Panguluri, Nobuyuki Kuwabara, Nigel Cooper, Srinivas M Tipparaju, Kevin B Sneed, Robert F Lundy
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引用次数: 2

Abstract

Conditioned taste aversion (CTA) is an adaptive behavior that benefits survival of animals including humans and also serves as a powerful model to study the neural mechanisms of learning. Memory formation is a necessary component of CTA learning and involves neural processing and regulation of gene expression in the amygdala. Many studies have been focused on the identification of intracellular signaling cascades involved in CTA, but not late responsive genes underlying the long-lasting behavioral plasticity. In this study, we explored in silico experiments to identify persistent changes in gene expression associated with CTA in rats. We used oligonucleotide microarrays to identify 248 genes in the amygdala regulated by CTA. Pathway Studio and IPA software analyses showed that the differentially expressed genes in the amygdala fall in diverse functional categories such as behavior, psychological disorders, nervous system development and function, and cell-to-cell signaling. Conditioned taste aversion is a complex behavioral trait which involves association of visceral and taste inputs, consolidation of taste and visceral information, memory formation, retrieval of stored information, and extinction phase. In silico analysis of differentially expressed genes is therefore necessary to manipulate specific phase/stage of CTA to understand the molecular insight.

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Abstract Image

Abstract Image

大鼠味觉厌恶学习后杏仁核的基因网络分析。
条件味觉厌恶(CTA)是一种有利于包括人类在内的动物生存的适应性行为,也是研究学习神经机制的有力模型。记忆形成是CTA学习的必要组成部分,涉及杏仁核的神经处理和基因表达调控。许多研究都集中在识别与CTA相关的细胞内信号级联,但没有发现长期行为可塑性的迟反应基因。在这项研究中,我们通过计算机实验探索了大鼠体内与CTA相关的基因表达的持续变化。我们利用寡核苷酸微阵列技术鉴定了248个受CTA调控的杏仁核基因。Pathway Studio和IPA软件分析显示,杏仁核中的差异表达基因涉及多种功能类别,如行为、心理障碍、神经系统发育和功能以及细胞间信号传导。条件性味觉厌恶是一种复杂的行为特征,涉及内脏和味觉输入的关联、味觉和内脏信息的巩固、记忆的形成、存储信息的检索和消退阶段。因此,有必要对差异表达基因进行计算机分析,以操纵CTA的特定阶段/阶段,以了解分子洞察力。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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