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首页> 外文期刊>Current pharmaceutical design >Mitochondrial biogenesis: a therapeutic target for neurodevelopmental disorders and neurodegenerative diseases.
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Mitochondrial biogenesis: a therapeutic target for neurodevelopmental disorders and neurodegenerative diseases.

机译:线粒体生物发生:神经开发障碍和神经变性疾病的治疗靶标。

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摘要

In the developing and mature brain, mitochondria act as central hubs for distinct but interwined pathways, necessary for neural development, survival, activity, connectivity and plasticity. In neurons, mitochondria assume diverse functions, such as energy production in the form of ATP, calcium buffering and generation of reactive oxygen species. Mitochondrial dysfunction contributes to a range of neurodevelopmental and neurodegenerative diseases, making mitochondria a potential target for pharmacological-based therapies. Pathogenesis associated with these diseases is accompanied by an increase in mitochondrial mass, a quantitative increase to overcome a qualitative deficiency due to mutated mitochondrial proteins that are either nuclear- or mitochondrial-encoded. This compensatory biological response is maladaptive, as it fails to sufficiently augment the bioenergetically functional mitochondrial mass and correct for the ATP deficit. Since regulation of neuronal mitochondrial biogenesis has been scantily investigated, our current understanding on the network of transcriptional regulators, co-activators and signaling regulators mainly derives from other cellular systems. The purpose of this review is to present the current state of our knowledge and understanding of the transcriptional and signaling cascades controlling neuronal mitochondrial biogenesis and the various therapeutic approaches to enhance the functional mitochondrial mass in the context of neurodevelopmental disorders and adult-onset neurodegenerative diseases.
机译:在开发和成熟的脑中,线粒体充当神经发育,生存,活动,连通性和可塑性所必需的明显而又间隙的途径。在神经元中,线粒体假设各种功能,例如以ATP,钙缓冲和反应性氧物种的形成的能量产生。线粒体功能障碍有助于一系列神经发育和神经变性疾病,使线粒体成为基于药理学疗法的潜在靶标。与这些疾病相关的发病机制伴随着线粒体肿块的增加,克服由于核心或线粒体编码的突变线粒体蛋白引起的定性缺乏的定量增加。这种补偿性生物反应是适当的,因为它未能充分增强生物能量功能性的线粒体质量并对ATP缺陷进行正确。由于对神经元线粒体生物发生的调节已经令人谨慎地研究,我们目前对转录调节因子网络,共激活剂和信号调节剂的了解主要来自其他细胞系统。本次审查的目的是介绍我们的知识和对控制神经元线粒体生物发生的转录和信号级联的认识和理解,以及各种治疗方法,以提高神经发育障碍和成人发作神经变性疾病的情况下的功能性线粒体肿块。

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