Saleem Suraiya, Kannan Rajaretinam Rajesh
Neuroscience Lab, Molecular and Nanomedicine Research Unit, Centre for Nanoscience and Nanotechnology, School of Bio and Chemical Engineering, Sathyabama Institute of Science and Technology, (Deemed to be University), Jeppiaar Nagar, Rajiv Gandhi Salai, Chennai, 600119 Tamil Nadu India.
Cell Death Discov. 2018 Oct 3;4:45. doi: 10.1038/s41420-018-0109-7. eCollection 2018.
Zebrafish () is emerging as an increasingly successful model for translational research on human neurological disorders. In this review, we appraise the high degree of neurological and behavioural resemblance of zebrafish with humans. It is highly validated as a powerful vertebrate model for investigating human neurodegenerative diseases. The neuroanatomic and neurochemical pathways of zebrafish brain exhibit a profound resemblance with the human brain. Physiological, emotional and social behavioural pattern similarities between them have also been well established. Interestingly, zebrafish models have been used successfully to simulate the pathology of Alzheimer's disease (AD) as well as Tauopathy. Their relatively simple nervous system and the optical transparency of the embryos permit real-time neurological imaging. Here, we further elaborate on the use of recent real-time imaging techniques to obtain vital insights into the neurodegeneration that occurs in AD. Zebrafish is adeptly suitable for Ca imaging, which provides a better understanding of neuronal activity and axonal dystrophy in a non-invasive manner. Three-dimensional imaging in zebrafish is a rapidly evolving technique, which allows the visualisation of the whole organism for an elaborate in vivo functional and neurophysiological analysis in disease condition. Suitability to high-throughput screening and similarity with humans makes zebrafish an excellent model for screening neurospecific compounds. Thus, the zebrafish model can be pivotal in bridging the gap from the bench to the bedside. This fish is becoming an increasingly successful model to understand AD with further scope for investigation in neurodevelopment and neurodegeneration, which promises exciting research opportunities in the future.
斑马鱼正逐渐成为人类神经疾病转化研究中越来越成功的模型。在本综述中,我们评估了斑马鱼与人类在神经学和行为学上的高度相似性。它已被高度验证为研究人类神经退行性疾病的强大脊椎动物模型。斑马鱼大脑的神经解剖学和神经化学途径与人类大脑表现出深刻的相似性。它们在生理、情感和社会行为模式上的相似性也已得到充分证实。有趣的是,斑马鱼模型已成功用于模拟阿尔茨海默病(AD)以及 Tau 蛋白病的病理过程。它们相对简单的神经系统和胚胎的光学透明性允许进行实时神经成像。在此,我们进一步阐述如何利用最近的实时成像技术来深入了解 AD 中发生的神经退行性变。斑马鱼非常适合进行钙成像,这能以非侵入性方式更好地理解神经元活动和轴突营养不良。斑马鱼的三维成像是一种快速发展的技术,它可以对整个生物体进行可视化,以便在疾病状态下进行精细的体内功能和神经生理学分析。适合高通量筛选以及与人类的相似性使斑马鱼成为筛选神经特异性化合物的优秀模型。因此,斑马鱼模型在弥合从实验室到临床的差距方面可能起着关键作用。这种鱼正逐渐成为理解 AD 的越来越成功的模型,在神经发育和神经退行性变方面还有进一步的研究空间,有望在未来带来令人兴奋的研究机会。