Schlegel Amnon, Gut Philipp
University of Utah Molecular Medicine Program, School of Medicine, University of Utah, 15 North 2030 East, Room 3240B, Salt Lake City, UT, 84112, USA,
Cell Mol Life Sci. 2015 Jun;72(12):2249-60. doi: 10.1007/s00018-014-1816-8. Epub 2015 Jan 4.
Metabolic diseases-atherosclerotic cardiovascular disease, type 2 diabetes mellitus, obesity, and non-alcoholic fatty liver disease--have reached pandemic proportions. Across gene, cell, organ, organism, and social-environmental scales, fundamental discoveries of the derangements that occur in these diseases are required to develop effective new treatments. Here we will review genetic, physiological, pathological and chemical biological discoveries in the emerging zebrafish model for studying metabolism and metabolic diseases. We present a synthesis of recent studies using forward and reverse genetic tools to make new contributions to our understanding of lipid trafficking, diabetes pathogenesis and complications, and to β-cell biology. The technical and physiological advantages and the pharmacological potential of this organism for discovery and validation of metabolic disease targets are stressed by our summary of recent findings. We conclude by arguing that metabolic research using zebrafish will benefit from adoption of conventional blood and tissue metabolite measurements, employment of modern imaging techniques, and development of more rigorous metabolic flux methods.
代谢性疾病——动脉粥样硬化性心血管疾病、2型糖尿病、肥胖症和非酒精性脂肪性肝病——已呈全球流行态势。要开发有效的新疗法,就需要在基因、细胞、器官、生物体以及社会环境等层面,对这些疾病中出现的紊乱进行基础性发现。在此,我们将综述新兴的斑马鱼模型在研究代谢和代谢性疾病方面的遗传学、生理学、病理学及化学生物学发现。我们综合了近期利用正向和反向遗传工具开展的研究,这些研究为我们理解脂质转运、糖尿病发病机制及并发症以及β细胞生物学做出了新贡献。我们通过总结近期研究结果,强调了该生物体在发现和验证代谢性疾病靶点方面的技术和生理优势以及药理学潜力。我们认为,采用传统的血液和组织代谢物测量方法、运用现代成像技术以及开发更严谨的代谢通量方法,将有助于斑马鱼代谢研究,以此作为结论。