与发动蛋白相关的GTP酶Drp1是小鼠胚胎发育和大脑发育所必需的。

The dynamin-related GTPase Drp1 is required for embryonic and brain development in mice.

作者信息

Wakabayashi Junko, Zhang Zhongyan, Wakabayashi Nobunao, Tamura Yasushi, Fukaya Masahiro, Kensler Thomas W, Iijima Miho, Sesaki Hiromi

机构信息

Department of Cell Biology, School of Medicine, Bloomberg School of Public Health, Johns Hopkins University, Baltimore, MD 21205, USA.

出版信息

J Cell Biol. 2009 Sep 21;186(6):805-16. doi: 10.1083/jcb.200903065. Epub 2009 Sep 14.

Abstract

The dynamin-related guanosine triphosphatase Drp1 mediates the division of mitochondria and peroxisomes. To understand the in vivo function of Drp1, complete and tissue-specific mouse knockouts of Drp1 were generated. Drp1-null mice die by embryonic day 11.5. This embryonic lethality is not likely caused by gross energy deprivation, as Drp1-null cells showed normal intracellular adenosine triphosphate levels. In support of the role of Drp1 in organelle division, mitochondria formed extensive networks, and peroxisomes were elongated in Drp1-null embryonic fibroblasts. Brain-specific Drp1 ablation caused developmental defects of the cerebellum in which Purkinje cells contained few giant mitochondria instead of the many short tubular mitochondria observed in control cells. In addition, Drp1-null embryos failed to undergo developmentally regulated apoptosis during neural tube formation in vivo. However, Drp1-null embryonic fibroblasts have normal responses to apoptotic stimuli in vitro, suggesting that the apoptotic function of Drp1 depends on physiological cues. These findings clearly demonstrate the physiological importance of Drp1-mediated organelle division in mice.

摘要

与发动蛋白相关的鸟苷三磷酸酶Drp1介导线粒体和过氧化物酶体的分裂。为了了解Drp1在体内的功能,构建了Drp1基因完全敲除和组织特异性敲除的小鼠模型。Drp1基因敲除小鼠在胚胎期11.5天死亡。这种胚胎致死性不太可能是由严重的能量剥夺引起的,因为Drp1基因敲除细胞的细胞内三磷酸腺苷水平正常。为支持Drp1在细胞器分裂中的作用,在Drp1基因敲除的胚胎成纤维细胞中,线粒体形成了广泛的网络,过氧化物酶体则拉长了。脑特异性Drp1基因敲除导致小脑发育缺陷,其中浦肯野细胞含有少量巨大线粒体,而非对照细胞中观察到的许多短管状线粒体。此外,Drp1基因敲除胚胎在体内神经管形成过程中未能经历发育调控的凋亡。然而,Drp1基因敲除的胚胎成纤维细胞在体外对凋亡刺激有正常反应,这表明Drp1的凋亡功能依赖于生理信号。这些发现清楚地证明了Drp1介导的细胞器分裂在小鼠中的生理重要性。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/9dd6/2753156/756cd9159d70/JCB_200903065_RGB_Fig1.jpg

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