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A Second-Generation Device for Automated Training and Quantitative Behavior Analyses of Molecularly-Tractable Model Organisms

机译:用于分子可牵引模型生物的自动训练和定量行为分析的第二代设备

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摘要

A deep understanding of cognitive processes requires functional, quantitative analyses of the steps leading from genetics and the development of nervous system structure to behavior. Molecularly-tractable model systems such as Xenopus laevis and planaria offer an unprecedented opportunity to dissect the mechanisms determining the complex structure of the brain and CNS. A standardized platform that facilitated quantitative analysis of behavior would make a significant impact on evolutionary ethology, neuropharmacology, and cognitive science. While some animal tracking systems exist, the available systems do not allow automated training (feedback to individual subjects in real time, which is necessary for operant conditioning assays). The lack of standardization in the field, and the numerous technical challenges that face the development of a versatile system with the necessary capabilities, comprise a significant barrier keeping molecular developmental biology labs from integrating behavior analysis endpoints into their pharmacological and genetic perturbations. Here we report the development of a second-generation system that is a highly flexible, powerful machine vision and environmental control platform. In order to enable multidisciplinary studies aimed at understanding the roles of genes in brain function and behavior, and aid other laboratories that do not have the facilities to undergo complex engineering development, we describe the device and the problems that it overcomes. We also present sample data using frog tadpoles and flatworms to illustrate its use. Having solved significant engineering challenges in its construction, the resulting design is a relatively inexpensive instrument of wide relevance for several fields, and will accelerate interdisciplinary discovery in pharmacology, neurobiology, regenerative medicine, and cognitive science.
机译:对认知过程的深刻理解要求对从遗传学到神经系统结构发展到行为的各个步骤进行功能性,定量分析。诸如非洲爪蟾(Xenopus laevis)和平面虫等分子可处理的模型系统为剖析确定大脑和中枢神经系统复杂结构的机制提供了前所未有的机会。一个有助于对行为进行定量分析的标准化平台将对进化伦理学,神经药理学和认知科学产生重大影响。尽管存在一些动物跟踪系统,但可用的系统不允许进行自动训练(实时反馈给个体对象,这对于操作条件调节测定是必需的)。该领域缺乏标准化,以及具有必要功能的多功能系统的开发面临着众多技术挑战,这构成了一个重要的障碍,使分子发育生物学实验室无法将行为分析终点整合到其药理和遗传扰动中。在这里,我们报告第二代系统的开发,该系统是高度灵活,功能强大的机器视觉和环境控制平台。为了进行旨在了解基因在脑功能和行为中的作用的多学科研究,并帮助其他不具备进行复杂工程开发设施的实验室,我们描述了该设备及其克服的问题。我们还提供了使用青蛙flat和flat虫的样本数据来说明其用法。解决了其结构中的重大工程挑战后,所得到的设计是一种相对便宜的工具,在多个领域具有广泛的相关性,并将加速药理学,神经生物学,再生医学和认知科学的跨学科发现。

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