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在幼鱼斑马鱼中进行癫痫成像。

Imaging epilepsy in larval zebrafish.

机构信息

MRC Centre for Neurodevelopmental Disorders, Institute of Psychiatry, Psychology and Neuroscience, King's College London, London, UK.

Department of Neurosciences, Research Center of the University of Montreal Hospital Center, Montreal, Quebec, Canada.

出版信息

Eur J Paediatr Neurol. 2020 Jan;24:70-80. doi: 10.1016/j.ejpn.2020.01.006. Epub 2020 Jan 14.

Abstract

Our understanding of the genetic aetiology of paediatric epilepsies has grown substantially over the last decade. However, in order to translate improved diagnostics to personalised treatments, there is an urgent need to link molecular pathophysiology in epilepsy to whole-brain dynamics in seizures. Zebrafish have emerged as a promising new animal model for epileptic seizure disorders, with particular relevance for genetic and developmental epilepsies. As a novel model organism for epilepsy research they combine key advantages: the small size of larval zebrafish allows high throughput in vivo experiments; the availability of advanced genetic tools allows targeted modification to model specific human genetic disorders (including genetic epilepsies) in a vertebrate system; and optical access to the entire central nervous system has provided the basis for advanced microscopy technologies to image structure and function in the intact larval zebrafish brain. There is a growing body of literature describing and characterising features of epileptic seizures and epilepsy in larval zebrafish. Recently genetically encoded calcium indicators have been used to investigate the neurobiological basis of these seizures with light microscopy. This approach offers a unique window into the multiscale dynamics of epileptic seizures, capturing both whole-brain dynamics and single-cell behaviour concurrently. At the same time, linking observations made using calcium imaging in the larval zebrafish brain back to an understanding of epileptic seizures largely derived from cortical electrophysiological recordings in human patients and mammalian animal models is non-trivial. In this review we briefly illustrate the state of the art of epilepsy research in zebrafish with particular focus on calcium imaging of epileptic seizures in the larval zebrafish. We illustrate the utility of a dynamic systems perspective on the epileptic brain for providing a principled approach to linking observations across species and identifying those features of brain dynamics that are most relevant to epilepsy. In the following section we survey the literature for imaging features associated with epilepsy and epileptic seizures and link these to observations made from humans and other more traditional animal models. We conclude by identifying the key challenges still facing epilepsy research in the larval zebrafish and indicate strategies for future research to address these and integrate more directly with the themes and questions that emerge from investigating epilepsy in other model systems and human patients.

摘要

在过去的十年中,我们对儿科癫痫的遗传病因的理解有了很大的提高。然而,为了将改进的诊断转化为个性化治疗,迫切需要将癫痫的分子病理生理学与癫痫发作中的全脑动力学联系起来。斑马鱼已成为一种有前途的新的癫痫发作障碍动物模型,特别是与遗传和发育性癫痫有关。作为癫痫研究的新型模式生物,它们结合了关键优势:幼鱼斑马鱼的体型小,允许进行高通量体内实验;先进的遗传工具的可用性允许在脊椎动物系统中对特定的人类遗传疾病(包括遗传性癫痫)进行靶向修饰;以及对整个中枢神经系统的光学访问为在完整的幼鱼斑马鱼大脑中进行高级显微镜技术成像结构和功能提供了基础。越来越多的文献描述和描述了幼鱼斑马鱼癫痫发作和癫痫的特征。最近,遗传编码的钙指示剂已被用于用光显微镜研究这些癫痫发作的神经生物学基础。这种方法为癫痫发作的多尺度动力学提供了独特的窗口,同时捕获了全脑动力学和单细胞行为。同时,将在幼鱼斑马鱼大脑中使用钙成像观察到的结果与主要源自人类患者和哺乳动物动物模型皮质电生理记录的癫痫发作理解联系起来并非易事。在这篇综述中,我们简要说明了斑马鱼癫痫研究的最新进展,特别关注幼鱼斑马鱼癫痫发作的钙成像。我们说明了癫痫大脑动态系统观点的实用性,为在物种间建立联系和识别与癫痫最相关的大脑动力学特征提供了一种原则性方法。在下一节中,我们调查了与癫痫相关的成像特征的文献,并将这些特征与来自人类和其他更传统动物模型的观察结果联系起来。我们最后确定了幼鱼斑马鱼癫痫研究仍然面临的关键挑战,并指出了未来研究的策略,以解决这些问题,并更直接地与从其他模型系统和人类患者中研究癫痫中出现的主题和问题集成。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/1ca0/7040569/d4c772f50b80/gr1.jpg

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