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Impact of Down syndrome on the performance of neonatal screening assays for severe primary immunodeficiency diseases

机译:唐氏综合症对严重原发性免疫缺陷疾病新生儿筛查分析性能的影响

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Though the mitochondrion was initially identified as a key organelle essentially required for energy production and oxidative metabolism, there is considerable evidence that mitochondria are intimately involved in regulating vital cellular processes, such as programmed cell death, proliferation and autophagy. Discovery of mitochondrial "shaping proteins" (Dynamin-related protein (Drp), mitofusins (Mfn) etc.) has revealed that mitochondria are highly dynamic organelles continually changing morphology by fission and fusion processes. Several human pathologies, including cancer, Parkinson's disease, Alzheimer's disease and cardiovascular diseases, have been linked to abnormalities in proteins that govern mitochondrial fission or fusion respectively. Notably, in the context of the heart, defects in mitochondrial dynamics resulting in too many fused and/or fragmented mitochondria have been associated with impaired cardiac development, autophagy, and contractile dysfunction. Understanding the mechanisms that govern mitochondrial fission/ fusion is paramount in developing new treatment strategies for human diseases in which defects in fission or fusion is the primary underlying defect. Here, we provide a comprehensive overview of the cellular targets and molecular signaling pathways that govern mitochondrial dynamics under normal and disease conditions.
机译:尽管线粒体最初被确定为产生能量和氧化代谢必不可少的关键细胞器,但有大量证据表明线粒体与调节重要的细胞过程密切相关,例如程序性细胞死亡,增殖和自噬。线粒体“成型蛋白”(动力蛋白相关蛋白(Drp),线粒体融合蛋白(Mfn)等)的发现表明线粒体是高度动态的细胞器,通过裂变和融合过程不断变化的形态。几种人类疾病,包括癌症,帕金森氏病,阿尔茨海默氏病和心血管疾病,分别与控制线粒体裂变或融合的蛋白质异常有关。值得注意的是,在心脏方面,线粒体动力学缺陷导致过多的融合和/或破碎的线粒体与心脏发育,自噬和收缩功能障碍有关。了解控制线粒体裂变/融合的机制对于开发人类疾病的新治疗策略至关重要,在这些疾病中,裂变或融合的缺陷是主要的潜在缺陷。在这里,我们提供了在正常和疾病条件下控制线粒体动力学的细胞靶标和分子信号通路的全面概述。

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