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与拟南芥线粒体中其他新发现的不依赖ATP的蛋白酶相比,AtOMA1影响氧化磷酸化系统和植物生长。

AtOMA1 Affects the OXPHOS System and Plant Growth in Contrast to Other Newly Identified ATP-Independent Proteases in Arabidopsis Mitochondria.

作者信息

Migdal Iwona, Skibior-Blaszczyk Renata, Heidorn-Czarna Malgorzata, Kolodziejczak Marta, Garbiec Arnold, Janska Hanna

机构信息

Institute of Experimental Biology, Faculty of Biological Sciences, University of WroclawWroclaw, Poland.

Department of Cellular Molecular Biology, Faculty of Biotechnology, University of WroclawWroclaw, Poland.

出版信息

Front Plant Sci. 2017 Sep 7;8:1543. doi: 10.3389/fpls.2017.01543. eCollection 2017.

Abstract

Compared with yeast, our knowledge on members of the ATP-independent plant mitochondrial proteolytic machinery is rather poor. In the present study, using confocal microscopy and immunoblotting, we proved that homologs of yeast Oma1, Atp23, Imp1, Imp2, and Oct1 proteases are localized in Arabidopsis mitochondria. We characterized these components of the ATP-independent proteolytic system as well as the earlier identified protease, AtICP55, with an emphasis on their significance in plant growth and functionality in the OXPHOS system. A functional complementation assay demonstrated that out of all the analyzed proteases, only AtOMA1 and AtICP55 could substitute for a lack of their yeast counterparts. We did not observe any significant developmental or morphological changes in plants lacking the studied proteases, either under optimal growth conditions or after exposure to stress, with the only exception being retarded root growth in , thus implying that the absence of a single mitochondrial ATP-independent protease is not critical for Arabidopsis growth and development. We did not find any evidence indicating a clear functional complementation of the missing protease by any other protease at the transcript or protein level. Studies on the impact of the analyzed proteases on mitochondrial bioenergetic function revealed that out of all the studied mutants, only showed differences in activities and amounts of OXPHOS proteins. Among all the OXPHOS disorders found in , the complex V deficiency is distinctive because it is mainly associated with decreased catalytic activity and not correlated with complex abundance, which has been observed in the case of supercomplex I + III and complex I deficiencies. Altogether, our study indicates that despite the presence of highly conservative homologs, the mitochondrial ATP-independent proteolytic system is not functionally conserved in plants as compared with yeast. Our findings also highlight the importance of AtOMA1 in maintenance of proper function of the OXPHOS system as well as in growth and development of .

摘要

与酵母相比,我们对不依赖ATP的植物线粒体蛋白水解机制成员的了解相当匮乏。在本研究中,我们利用共聚焦显微镜和免疫印迹法证明,酵母Oma1、Atp23、Imp1、Imp2和Oct1蛋白酶的同源物定位于拟南芥线粒体中。我们对不依赖ATP的蛋白水解系统的这些组分以及先前鉴定的蛋白酶AtICP55进行了表征,重点关注它们在植物生长中的意义以及在氧化磷酸化(OXPHOS)系统中的功能。功能互补试验表明,在所有分析的蛋白酶中,只有AtOMA1和AtICP55能够替代其酵母对应物的缺失。在最佳生长条件下或暴露于胁迫后,我们未观察到缺乏所研究蛋白酶的植物有任何显著的发育或形态变化,唯一的例外是[具体植物]的根生长受阻,这意味着单个不依赖线粒体ATP的蛋白酶的缺失对拟南芥的生长和发育并不关键。我们没有发现任何证据表明在转录或蛋白质水平上,任何其他蛋白酶能对缺失的蛋白酶进行明显的功能互补。对所分析蛋白酶对线粒体生物能功能影响的研究表明,在所有研究的突变体中,只有[具体突变体]在OXPHOS蛋白的活性和数量上表现出差异。在[具体突变体]中发现的所有OXPHOS紊乱中,复合体V缺陷是独特的,因为它主要与催化活性降低有关,而与复合体丰度无关,这在超复合体I + III和复合体I缺陷的情况下已被观察到。总之,我们的研究表明,尽管存在高度保守的同源物,但与酵母相比,植物中不依赖线粒体ATP的蛋白水解系统在功能上并不保守。我们的研究结果还突出了AtOMA1在维持OXPHOS系统正常功能以及[具体植物]生长发育中的重要性。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/871e/5594102/779e292a3ae0/fpls-08-01543-g001.jpg

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