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本文引用的文献

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Aversive training methods in Xenopus laevis: general principles.非洲爪蟾的厌恶性训练方法:一般原则。
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Brain computer interfaces, a review.脑机接口:综述。
Sensors (Basel). 2012;12(2):1211-79. doi: 10.3390/s120201211. Epub 2012 Jan 31.
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Normalized shape and location of perturbed craniofacial structures in the Xenopus tadpole reveal an innate ability to achieve correct morphology.正常化的扰动颅面结构的形状和位置在非洲爪蟾蝌蚪中揭示了一种实现正确形态的先天能力。
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Transmembrane voltage potential controls embryonic eye patterning in Xenopus laevis.跨膜电压势控制非洲爪蟾胚胎眼睛的模式形成。
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Retinal prostheses: current clinical results and future needs.视网膜假体:当前临床结果与未来需求。
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A second-generation device for automated training and quantitative behavior analyses of molecularly-tractable model organisms.第二代设备,用于对可分子追踪的模式生物进行自动化训练和定量行为分析。
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Neuroengineering tools/applications for bidirectional interfaces, brain-computer interfaces, and neuroprosthetic implants - a review of recent progress.用于双向接口、脑机接口和神经假体植入的神经工程工具/应用——近期进展综述
Front Neuroeng. 2010 Oct 15;3:112. doi: 10.3389/fneng.2010.00112. eCollection 2010.
9
Consistent left-right asymmetry cannot be established by late organizers in Xenopus unless the late organizer is a conjoined twin.在非洲爪蟾中,晚期组织者不能建立一致的左右不对称性,除非晚期组织者是联体双胞胎。
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Long-range neural and gap junction protein-mediated cues control polarity during planarian regeneration.长程神经和缝隙连接蛋白介导的线索在扁形动物再生过程中控制极性。
Dev Biol. 2010 Mar 1;339(1):188-99. doi: 10.1016/j.ydbio.2009.12.012. Epub 2009 Dec 21.

头外异位眼为非洲爪蟾蝌蚪提供光介导学习的感觉数据。

Ectopic eyes outside the head in Xenopus tadpoles provide sensory data for light-mediated learning.

机构信息

Center for Regenerative and Developmental Biology and Department of Biology, Tufts University, 200 Boston Avenue, Suite 4600, Medford, MA 02155, USA.

出版信息

J Exp Biol. 2013 Mar 15;216(Pt 6):1031-40. doi: 10.1242/jeb.074963.

DOI:10.1242/jeb.074963
PMID:23447666
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC3587383/
Abstract

A major roadblock in the biomedical treatment of human sensory disorders, including blindness, has been an incomplete understanding of the nervous system and its ability to adapt to changes in sensory modality. Likewise, fundamental insight into the evolvability of complex functional anatomies requires understanding brain plasticity and the interaction between the nervous system and body architecture. While advances have been made in the generation of artificial and biological replacement components, the brain's ability to interpret sensory information arising from ectopic locations is not well understood. We report the use of eye primordia grafts to create ectopic eyes along the body axis of Xenopus tadpoles. These eyes are morphologically identical to native eyes and can be induced at caudal locations. Cell labeling studies reveal that eyes created in the tail send projections to the stomach and trunk. To assess function we performed light-mediated learning assays using an automated machine vision and environmental control system. The results demonstrate that ectopic eyes in the tail of Xenopus tadpoles could confer vision to the host. Thus ectopic visual organs were functional even when present at posterior locations. These data and protocols demonstrate the ability of vertebrate brains to interpret sensory input from ectopic structures and incorporate them into adaptive behavioral programs. This tractable new model for understanding the robust plasticity of the central nervous system has significant implications for regenerative medicine and sensory augmentation technology.

摘要

在人类感觉障碍的生物医学治疗中,包括失明,一个主要障碍是对神经系统及其适应感觉方式变化的能力缺乏完整的理解。同样,要深入了解复杂功能解剖结构的可进化性,需要了解大脑的可塑性以及神经系统与身体结构之间的相互作用。虽然在人工和生物替代组件的生成方面已经取得了进展,但大脑对来自异位位置的感觉信息的解释能力还没有得到很好的理解。我们报告了使用眼睛原基移植物在非洲爪蟾蝌蚪的体轴上创建异位眼睛。这些眼睛在形态上与原生眼睛相同,并且可以在尾部诱导产生。细胞标记研究表明,在尾部形成的眼睛向胃和躯干发送投射。为了评估功能,我们使用自动化机器视觉和环境控制系统进行了光介导的学习测定。结果表明,非洲爪蟾蝌蚪尾部的异位眼睛可以为宿主提供视觉。因此,即使存在于后部位置,异位视觉器官也具有功能。这些数据和方案表明脊椎动物大脑有能力从异位结构解释感觉输入,并将其纳入适应性行为程序中。这种用于理解中枢神经系统强大可塑性的新的可处理模型对再生医学和感觉增强技术具有重要意义。