Comprehensive analysis of the C. elegans connectome reveals novel circuits and functions of previously unstudied neurons.

IF 9.8 1区 生物学 Q1 Agricultural and Biological Sciences PLoS Biology Pub Date : 2024-12-17 eCollection Date: 2024-12-01 DOI:10.1371/journal.pbio.3002939
Scott W Emmons
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Abstract

Despite decades of research on the Caenorhabditis elegans nervous system based on an anatomical description of synaptic connectivity, the circuits underlying behavior remain incompletely described and the functions of many neurons are still unknown. Updated and more complete chemical and gap junction connectomes of both adult sexes covering the entire animal including the muscle end organ have become available recently. Here, these are analyzed to gain insight into the overall structure of the connectivity network and to suggest functions of individual neuron classes. Modularity analysis divides the connectome graph into 10 communities that can be correlated with broad categories of behavior. A significant role of the body wall musculature end organ is emphasized as both a site of significant information convergence and as a source of sensory input in a feedback loop. Convergence of pathways for multisensory integration occurs throughout the network-most interneurons have similar indegrees and outdegrees and hence disperse information as much as they aggregate it. New insights include description of a set of high degree interneurons connected by many gap junctions running through the ventral cord that may represent a previously unrecognized locus of information processing. There is an apparent mechanosensory and proprioceptive field covering the entire body formed by connectivity of the many mechanosensory neurons of multiple types to 2 interneurons with output connections across the nervous system. Several additional significant, previously unrecognized circuits and pathways are uncovered, some involving unstudied neurons. The insights are valuable for guiding theoretical investigation of network properties as well as experimental studies of the functions of individual neurons, groups of neurons, and circuits.

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对 elegans 连接组的全面分析揭示了以前未研究过的神经元的新电路和功能。
尽管几十年来对秀丽隐杆线虫神经系统的研究基于突触连接的解剖学描述,但行为背后的电路仍然没有得到完整的描述,许多神经元的功能仍然未知。最近,更新和更完整的化学和间隙连接连接体覆盖了整个动物,包括肌肉末端器官。在这里,我们对这些数据进行分析,以深入了解连接网络的整体结构,并提出单个神经元类的功能。模块化分析将连接体图划分为10个社区,这些社区可以与广泛的行为类别相关联。强调了体壁肌肉组织末端器官的重要作用,它既是重要信息汇聚的场所,也是反馈回路中感觉输入的来源。多感觉整合通路的收敛发生在整个网络中——大多数中间神经元有相似的度和度,因此分散的信息和聚集的信息一样多。新的见解包括描述了一组由许多间隙连接连接的高度中间神经元,这些间隙连接贯穿腹侧脊髓,可能代表了以前未被识别的信息处理位点。许多不同类型的机械感觉神经元与2个具有跨神经系统输出连接的中间神经元相连,形成了覆盖全身的机械感觉和本体感觉野。另外几个重要的、以前未被识别的电路和通路也被发现,其中一些涉及未被研究的神经元。这些见解对于指导网络特性的理论研究以及单个神经元、神经元群和电路功能的实验研究具有重要价值。
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来源期刊
PLoS Biology
PLoS Biology BIOCHEMISTRY & MOLECULAR BIOLOGY-BIOLOGY
CiteScore
15.40
自引率
2.00%
发文量
359
审稿时长
3-8 weeks
期刊介绍: PLOS Biology is the flagship journal of the Public Library of Science (PLOS) and focuses on publishing groundbreaking and relevant research in all areas of biological science. The journal features works at various scales, ranging from molecules to ecosystems, and also encourages interdisciplinary studies. PLOS Biology publishes articles that demonstrate exceptional significance, originality, and relevance, with a high standard of scientific rigor in methodology, reporting, and conclusions. The journal aims to advance science and serve the research community by transforming research communication to align with the research process. It offers evolving article types and policies that empower authors to share the complete story behind their scientific findings with a diverse global audience of researchers, educators, policymakers, patient advocacy groups, and the general public. PLOS Biology, along with other PLOS journals, is widely indexed by major services such as Crossref, Dimensions, DOAJ, Google Scholar, PubMed, PubMed Central, Scopus, and Web of Science. Additionally, PLOS Biology is indexed by various other services including AGRICOLA, Biological Abstracts, BIOSYS Previews, CABI CAB Abstracts, CABI Global Health, CAPES, CAS, CNKI, Embase, Journal Guide, MEDLINE, and Zoological Record, ensuring that the research content is easily accessible and discoverable by a wide range of audiences.
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