生物
细胞凋亡
细胞生物学
信号转导
E2F1
遗传学
细胞周期
作者
Nuno Raimundo,Lei Song,Timothy E. Shutt,Sharen E. McKay,Justin Cotney,Min‐Xin Guan,Thomas Gilliland,David Hohuan,Joseph Santos‐Sacchi,Gerald S. Shadel
出处
期刊:Cell
[Elsevier]
日期:2012-02-01
卷期号:148 (4): 716-726
被引量:166
标识
DOI:10.1016/j.cell.2011.12.027
摘要
Mitochondrial dysfunction causes poorly understood tissue-specific pathology stemming from primary defects in respiration, coupled with altered reactive oxygen species (ROS), metabolic signaling, and apoptosis. The A1555G mtDNA mutation that causes maternally inherited deafness disrupts mitochondrial ribosome function, in part, via increased methylation of the mitochondrial 12S rRNA by the methyltransferase mtTFB1. In patient-derived A1555G cells, we show that 12S rRNA hypermethylation causes ROS-dependent activation of AMP kinase and the proapoptotic nuclear transcription factor E2F1. This retrograde mitochondrial-stress relay is operative in vivo, as transgenic-mtTFB1 mice exhibit enhanced 12S rRNA methylation in multiple tissues, increased E2F1 and apoptosis in the stria vascularis and spiral ganglion neurons of the inner ear, and progressive E2F1-dependent hearing loss. This mouse mitochondrial disease model provides a robust platform for deciphering the complex tissue specificity of human mitochondrial-based disorders, as well as the precise pathogenic mechanism of maternally inherited deafness and its exacerbation by environmental factors.PaperFlickeyJraWQiOiI4ZjUxYWNhY2IzYjhiNjNlNzFlYmIzYWFmYTU5NmZmYyIsImFsZyI6IlJTMjU2In0.eyJzdWIiOiJlMjBkN2Y0Y2FlYmYwYzg4NmNjNzZjY2Q0NzhiYzc3YSIsImtpZCI6IjhmNTFhY2FjYjNiOGI2M2U3MWViYjNhYWZhNTk2ZmZjIiwiZXhwIjoxNjc5MjUzNjM2fQ.XqPqJ4_H-4VxaaRlvwnq0uOEsVQXFEhKzFdjqfns_M8f47RXPYeF6-rVATrfIOumUKuu1Ml9zmCM2qZHK7B9dQtMpniTnpw2K28Cp3UwtPvGwX5Vw5dFK68ELsFQ4XmhM9NsaL5hZur9tjn4l9FnCVHaooTnKlnEkOyEzUq3Na18z1GUFOlaqV_aQrKq4CVIUHZsCmU3XCvlkc7upCZ84PYn_6m-NaWPWxcZpOELup1d16XFqFq0vZUenmNL5YkGRChmBGwgM3qJGTEV4MnqHMi27p6ih_1UOPmVXureWHlU5tpnzLe7hTP_xTwm5K69_Kr_9lCt4mF6HfFEWeIvfg(mp4, (14.89 MB) Download video
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