Mitochondrial diseases: expanding the diagnosis in the era of genetic testing.

Russell P Saneto
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引用次数: 11

Abstract

Mitochondrial diseases are clinically and genetically heterogeneous. These diseases were initially described a little over three decades ago. Limited diagnostic tools created disease descriptions based on clinical, biochemical analytes, neuroimaging, and muscle biopsy findings. This diagnostic mechanism continued to evolve detection of inherited oxidative phosphorylation disorders and expanded discovery of mitochondrial physiology over the next two decades. Limited genetic testing hampered the definitive diagnostic identification and breadth of diseases. Over the last decade, the development and incorporation of massive parallel sequencing has identified approximately 300 genes involved in mitochondrial disease. Gene testing has enlarged our understanding of how genetic defects lead to cellular dysfunction and disease. These findings have expanded the understanding of how mechanisms of mitochondrial physiology can induce dysfunction and disease, but the complete collection of disease-causing gene variants remains incomplete. This article reviews the developments in disease gene discovery and the incorporation of gene findings with mitochondrial physiology. This understanding is critical to the development of targeted therapies.

Abstract Image

线粒体疾病:在基因检测时代扩大诊断。
线粒体疾病在临床上和遗传学上都是异质的。这些疾病最初是在三十多年前被描述出来的。有限的诊断工具根据临床、生化分析、神经成像和肌肉活检结果创建疾病描述。在接下来的二十年里,这种诊断机制继续演变为遗传性氧化磷酸化疾病的检测,并扩大了线粒体生理学的发现。有限的基因检测妨碍了疾病的明确诊断鉴定和广度。在过去的十年中,大规模平行测序的发展和结合已经确定了大约300个与线粒体疾病有关的基因。基因检测扩大了我们对基因缺陷如何导致细胞功能障碍和疾病的理解。这些发现扩大了对线粒体生理机制如何诱导功能障碍和疾病的理解,但致病基因变异的完整收集仍然不完整。本文综述了疾病基因发现的进展以及基因发现与线粒体生理学的结合。这种认识对靶向治疗的发展至关重要。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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CiteScore
2.70
自引率
0.00%
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