Molecular Mechanisms Directing Spine Outgrowth and Synaptic Partner Selection in Caenorhabditis elegans.

Journal of Experimental Neuroscience Pub Date : 2018-12-02 eCollection Date: 2018-01-01 DOI:10.1177/1179069518816088
Devyn Oliver, Kellianne Alexander, Michael M Francis
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引用次数: 4

Abstract

The development of the nervous system requires precise outgrowth, extension, and wiring of both axons and dendrites to generate properly functioning neural circuits. The molecular mechanisms that shape neurite development, in particular dendritic development, remain incompletely understood. Dendrites are often highly branched and coated with actin-filled, thorny protrusions, called dendritic spines, that allow for increased numbers of synaptic contacts with neighboring neurons. Disruptions in dendritic spine development have been implicated in many neurological disorders such as autism, schizophrenia, and Alzheimer's disease. Although the development of dendritic spines is vital for cognitive function, understanding the mechanisms driving their outgrowth and stabilization in vivo remains a challenge. Our recent work identifies the presence of dendritic spine-like structures in the nematode Caenorhabditis elegans and provides initial insights into mechanisms promoting spine outgrowth in this system. Specifically, we show that neurexin/nrx-1 is a critical molecular component in directing the development of synaptic connections and promoting spine outgrowth. Our investigation provides important insights into the molecular machinery that sculpt synaptic connectivity, and continuing efforts in this system offer the potential for identifying new mechanisms governing both synaptic partner selection and dendritic spine outgrowth.

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秀丽隐杆线虫脊柱生长和突触伴侣选择的分子机制。
神经系统的发育需要轴突和树突的精确生长、延伸和连接,以产生功能正常的神经回路。形成神经突发育的分子机制,特别是树突发育的分子机制,仍然不完全清楚。树突通常是高度分叉的,并被充满肌动蛋白的多刺突起(称为树突棘)所覆盖,树突棘允许增加与邻近神经元突触接触的数量。树突棘发育的中断与许多神经系统疾病有关,如自闭症、精神分裂症和阿尔茨海默病。尽管树突棘的发育对认知功能至关重要,但了解其在体内生长和稳定的机制仍然是一个挑战。我们最近的工作确定了秀丽隐杆线虫中树突棘样结构的存在,并为该系统中促进脊柱生长的机制提供了初步的见解。具体来说,我们表明neurexin/nrx-1是指导突触连接发展和促进脊柱生长的关键分子成分。我们的研究为塑造突触连通性的分子机制提供了重要的见解,并且在该系统中的持续努力为确定控制突触伴侣选择和树突棘生长的新机制提供了潜力。
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