秀丽隐杆线虫的神经元基因组。

Oliver Hobert
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引用次数: 226

摘要

线虫约100 MB的基因组编码约20,000个蛋白质编码基因,其中许多基因是神经系统功能所必需的,包括成年雌雄同体的302个神经元和成年雄性的383个神经元。除了管家基因,分化的神经元被认为表达了数百甚至数千个决定其功能特性的基因。这些基因编码离子通道、g蛋白偶联受体、神经递质合成酶、转运体和受体、神经肽及其受体、细胞粘附分子、运动蛋白、信号分子和许多其他基因。这些基因统称为“末端分化基因”或“效应基因”。不同末端分化基因组合的差异表达决定了不同的神经元类型。本文提供了一个超过2800个假定的终端分化基因的纲要。许多基因家族分析揭示的一个普遍主题是许多神经元功能相关基因家族的线虫特异性扩展,例如,包括许多类型的离子通道家族,感觉受体和神经递质受体。这里提供的基因列表可以有多种用途。它们可以作为单个基因家族的快速参考指南,也可以用于挖掘在神经系统中具有可能功能的基因的大型数据集(例如,表达数据集)。它们还可以作为未来项目的起点。例如,对神经系统中这些基因的复杂表达模式的调控的全面理解将最终解释神经系统是如何构建的。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
The neuronal genome of Caenorhabditis elegans.

The ~100 MB genome of C. elegans codes for ~20,000 protein-coding genes many of which are required for the function of the nervous system, composed of 302 neurons in the adult hermaphrodite and of 383 neurons in the adult male. In addition to housekeeping genes, a differentiated neuron is thought to express many hundreds if not thousands of genes that define its functional properties. These genes code for ion channels, G-protein-coupled receptors, neurotransmitter-synthesizing enzymes, transporters and receptors, neuropeptides and their receptors, cell adhesion molecules, motor proteins, signaling molecules and many others. Collectively such genes have been referred to as "terminal differentiation genes" or "effector genes". The differential expression of distinct combinations of terminal differentiation genes define different neuron types. This paper provides a compendium of more than 2,800 putative terminal differentiation genes. One pervasive theme revealed by the analysis of many gene families is the nematode-specific expansions of many neuron function-related gene families, including, for example, many types of ion channel families, sensory receptors and neurotransmitter receptors. The gene lists provided here can serve multiple purposes. They can serve as quick reference guides for individual gene families or they can be used to mine large datasets (e.g., expression datasets) for genes with likely functions in the nervous system. They also serve as a starting point for future projects. For example, a comprehensive understanding of the regulation of the often complex expression patterns of these genes in the nervous system will eventually explain how nervous systems are built.

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