线粒体蛋白质研究中的超分辨率成像技术

H. Yeung, M. Man
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引用次数: 1

摘要

透化(MOMP),进而引发一系列事件,导致细胞质和细胞核降解(Pagliarin&Rutter,2013;帕森斯和格林,2010年)。这一过程在先天免疫中起着关键作用,细胞死亡会提醒免疫系统感染。除了控制细胞死亡外,线粒体在钙离子稳态和铁硫蛋白合成中的作用进一步支持了线粒体蛋白在各种细胞信号通路中的过多作用(Tait&Green,2012)。尽管这些功能早就被发现了,但它们的详细机制仍然未知。最广泛的线粒体蛋白质数据库MitoCarta表明,线粒体蛋白质组在很大程度上仍然未知(Pagliarin&Rutter,2013)。大约四分之一的编目基因在基因本体论中没有注释,这表明线粒体蛋白质的特征存在重大的知识差距。考虑到蛋白质的不同作用,线粒体蛋白质功能障碍是一系列遗传和表型异质性代谢紊乱的基础,这不足为奇(Nunnari&Suomalainen,2012)。从先天性代谢错误到更常见的神经退行性疾病和糖尿病,这些疾病困扰着儿童和成人(Calvo&Mootha,2010;林和比尔,2006年;Szendroedi等人,2012年)。因此,应该对蛋白质的动态结构及其与相邻蛋白质的复杂相互作用有更全面的了解。当与当前的基因组诊断方法、线粒体蛋白质研究中的超分辨率成像技术结合使用时,这将实现更及时、更明确的诊断
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Super-Resolution Imaging Technologies in the Study of Mitochondrial Proteins
permeabilization (MOMP), which in turn triggers a cascade of events that lead to the degradation of the cytoplasm and nucleus (Pagliarini & Rutter, 2013; Parsons & Green, 2010). This process has a key part in innate immunity, with cell deaths alerting the immune system of infections. In addition to controlling cell death, mitochondria’s role in calcium ion homeostasis and the synthesis of iron-sulfur proteins further supports the plethora of roles mitochondrial proteins play in various cell signalling pathways (Tait & Green, 2012). Although these functions were discovered long ago, their detailed mechanisms are still unknown. MitoCarta, the most extensive mitochondrial protein database, suggests that the mitochondrial proteome still largely remains unchartered (Pagliarini & Rutter, 2013). Approximately a quarter of the catalogued genes are not annotated in gene ontology, suggesting significant knowledge gaps in the characterization of mitochondrial proteins. Given the proteins’ diverse roles, it is unsurprising that mitochondrial protein dysfunction underpins a spectrum of metabolic disorders that are genetically and phenotypically heterogeneous (Nunnari & Suomalainen, 2012). Such disorders, ranging from inborn metabolic errors to the more common neurodegenerative diseases and diabetes, plague children and adults alike (Calvo & Mootha, 2010; Lin & Beal, 2006; Szendroedi et al., 2012). Accordingly, a more comprehensive understanding of both the dynamic structures of the proteins and their complex interplay with neighbouring proteins should be developed. This would achieve more timely and definite diagnoses when used with current genomic diagnostic approaches, Super-Resolution Imaging Technologies in the Study of Mitochondrial Proteins
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