携带水泡性口炎病毒载体的脊椎动物的顺行或逆行跨突触回路追踪

Q2 Neuroscience
Kevin T. Beier, Nathan A. Mundell, Y. Albert Pan, Constance L. Cepko
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引用次数: 21

摘要

病毒已被用作跨突触示踪剂,使人们能够绘制神经元群体的输入和输出,因为它们能够在神经元中复制,并在体内仅通过突触连接的细胞传播。迄今为止,它们的使用主要局限于哺乳动物。为了探索这种病毒在扩大宿主范围内的应用,我们在各种生物体中测试了重组水泡性口腔炎病毒(rVSV)载体的突触性追踪能力。在包括脊椎动物和无脊椎动物模式生物在内的多种生物中成功感染并表达了基因。此外,rVSV能够在由源自VSV或狂犬病病毒(RABV)的病毒包膜糖蛋白(G)决定的可预测方向上对神经回路进行突触性追踪。在新旧世界的猴子、海马、水母、斑马鱼、鸡和小鼠身上观察到了从最初感染和/或病毒复制和传播开始的顺行和逆行标记。这些载体广泛适用于基因递送、传入束追踪和/或定向连接映射。在这里,我们详细介绍了这些载体的使用,并提供了使用几种注射策略传播病毒、改变表面糖蛋白和感染多种生物体的方案。©2016,作者:John Wiley&;股份有限公司。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Anterograde or Retrograde Transsynaptic Circuit Tracing in Vertebrates with Vesicular Stomatitis Virus Vectors

Viruses have been used as transsynaptic tracers, allowing one to map the inputs and outputs of neuronal populations, due to their ability to replicate in neurons and transmit in vivo only across synaptically connected cells. To date, their use has been largely restricted to mammals. In order to explore the use of such viruses in an expanded host range, we tested the transsynaptic tracing ability of recombinant vesicular stomatitis virus (rVSV) vectors in a variety of organisms. Successful infection and gene expression were achieved in a wide range of organisms, including vertebrate and invertebrate model organisms. Moreover, rVSV enabled transsynaptic tracing of neural circuitry in predictable directions dictated by the viral envelope glycoprotein (G), derived from either VSV or rabies virus (RABV). Anterograde and retrograde labeling, from initial infection and/or viral replication and transmission, was observed in Old and New World monkeys, seahorses, jellyfish, zebrafish, chickens, and mice. These vectors are widely applicable for gene delivery, afferent tract tracing, and/or directional connectivity mapping. Here, we detail the use of these vectors and provide protocols for propagating virus, changing the surface glycoprotein, and infecting multiple organisms using several injection strategies. © 2016 by John Wiley & Sons, Inc.

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来源期刊
Current Protocols in Neuroscience
Current Protocols in Neuroscience Neuroscience-Neuroscience (all)
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期刊介绍: Current Protocols in Neuroscience is a one-stop resource for finding and adapting the best models and methods for all types of neuroscience experiments. Updated every three months in all formats, CPNS is constantly evolving to keep pace with the very latest discoveries and developments. A year of these quarterly updates is included in the initial CPNS purchase price.
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