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用于评估线粒体结构、氧化应激和线粒体自噬的条件性 MitoTimer 报告小鼠。

Conditional MitoTimer reporter mice for assessment of mitochondrial structure, oxidative stress, and mitophagy.

机构信息

Department of Biochemistry and Molecular Genetics, University of Virginia School of Medicine, Charlottesville, VA, United States; Center for Skeletal Muscle Research at Robert M. Berne Cardiovascular Research Center, University of Virginia School of Medicine, Charlottesville, VA, United States.

Center for Skeletal Muscle Research at Robert M. Berne Cardiovascular Research Center, University of Virginia School of Medicine, Charlottesville, VA, United States.

出版信息

Mitochondrion. 2019 Jan;44:20-26. doi: 10.1016/j.mito.2017.12.008. Epub 2017 Dec 20.

Abstract

Assessment of structural and functional changes of mitochondria is vital for biomedical research as mitochondria are the power plants essential for biological processes and tissue/organ functions. Others and we have developed a novel reporter gene, pMitoTimer, which codes for a redox sensitive mitochondrial targeted protein that switches from green fluorescence protein (GFP) to red fluorescent protein (DsRed) when oxidized. It has been shown in transfected cells, transgenic C. elegans and Drosophila m., as well as somatically transfected adult skeletal muscle that this reporter gene allows quantifiable assessment of mitochondrial structure, oxidative stress, and lysosomal targeting of mitochondria-containing autophagosomes. Here, we generated CAG-CAT-MitoTimer transgenic mice using a transgene containing MitoTimer downstream of LoxP-flanked bacterial chloramphenicol acetyltransferase (CAT) gene with stop codon under the control of the cytomegalovirus (CMV) enhancer fused to the chicken β-actin promoter (CAG). When CAG-CAT-MitoTimer mice were crossbred with various tissue-specific (muscle, adipose tissue, kidney, and pancreatic tumor) or global Cre transgenic mice, the double transgenic offspring showed MitoTimer expression in tissue-specific or global manner. Lastly, we show that hindlimb ischemia-reperfusion caused early, transient increases of mitochondrial oxidative stress, mitochondrial fragmentation and lysosomal targeting of autophagosomes containing mitochondria as well as a later reduction of mitochondrial content in skeletal muscle along with mitochondrial oxidative stress in sciatic nerve. Thus, we have generated conditional MitoTimer mice and provided proof of principle evidence of their utility to simultaneously assess mitochondrial structure, oxidative stress, and mitophagy in vivo in a tissue-specific, controllable fashion.

摘要

评估线粒体的结构和功能变化对于生物医学研究至关重要,因为线粒体是生物过程和组织/器官功能所必需的“能量工厂”。我们开发了一种新型报告基因 pMitoTimer,它编码一种氧化还原敏感的靶向线粒体的蛋白质,当被氧化时,该蛋白质从绿色荧光蛋白(GFP)转变为红色荧光蛋白(DsRed)。在转染细胞、转基因秀丽隐杆线虫和果蝇中以及体细胞转染的成年骨骼肌中,已经证明该报告基因可定量评估线粒体结构、氧化应激和含有线粒体的自噬体的溶酶体靶向。在这里,我们使用包含 MitoTimer 的转基因生成了 CAG-CAT-MitoTimer 转基因小鼠,该转基因下游是 LoxP 侧翼的细菌氯霉素乙酰转移酶(CAT)基因,带有终止密码子,受巨细胞病毒(CMV)增强子的控制,融合到鸡β-肌动蛋白启动子(CAG)中。当 CAG-CAT-MitoTimer 小鼠与各种组织特异性(肌肉、脂肪组织、肾脏和胰腺肿瘤)或全局 Cre 转基因小鼠杂交时,双转基因后代以组织特异性或全局方式表达 MitoTimer。最后,我们表明,后肢缺血再灌注导致线粒体氧化应激、线粒体碎片化和含有线粒体的自噬体的溶酶体靶向的早期、短暂增加,以及随后骨骼肌中线粒体含量和坐骨神经中线粒体氧化应激的减少。因此,我们已经生成了条件性 MitoTimer 小鼠,并提供了其在组织特异性、可控方式下体内同时评估线粒体结构、氧化应激和线粒体自噬的原理性证据。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/338b/6387589/5d281447b909/nihms-1519773-f0001.jpg

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