Gaudó Paula, de Tomás-Mateo Elena, Garrido-Pérez Nuria, Santana Alfredo, Ruiz-Pesini Eduardo, Montoya Julio, Bayona-Bafaluy Pilar
Biochemistry and Molecular Biology Department. Universidad de Zaragoza, 50009- and 50013, Zaragoza, Spain.
Biochemistry and Molecular Biology Department. Universidad de Zaragoza, 50009- and 50013, Zaragoza, Spain; Institute for Health Research (IIS) de Aragón, 50009, Zaragoza, Spain; Rare Diseases Networking Biomedical Research Centre (CIBERER), 28029, Madrid, Spain; Institute for Biocomputation and Physics of Complex Systems, University of Zaragoza, 50018, Zaragoza, Spain.
Free Radic Biol Med. 2024 Feb 1;211:114-126. doi: 10.1016/j.freeradbiomed.2023.12.006. Epub 2023 Dec 12.
Mitochondrial ATAD3A is an ATPase Associated with diverse cellular Activities (AAA) domain containing enzyme, involved in the structural organization of the inner mitochondrial membrane and of increasing importance in childhood disease. In humans, two ATAD3A paralogs arose by gene duplication during evolution: ATAD3B and ATAD3C. Here we investigate the cellular activities of the ATAD3C paralog that has been considered a pseudogene. We detected unique ATAD3C peptides in HEK 293T cells, with expression similar to that in human tissues, and showed that it is an integral membrane protein that exposes its carboxy-terminus to the intermembrane space. Overexpression of ATAD3C, but not of ATAD3A, in fibroblasts caused a decrease in cell proliferation and oxygen consumption rate, and an increase of cellular ROS. This was due to the incorporation of ATAD3C monomers in ATAD3A complex in the mitochondrial membrane reducing its size. Consistent with a negative regulation of ATAD3A function in mitochondrial membrane organization, ATAD3C expression led to increased accumulation of respiratory chain dimeric CIII in the inner membrane, to the detriment to that assembled in respiratory supercomplexes. Our results demonstrate a negative dominant role of the ATAD3C paralog with implications for mitochondrial OXPHOS function and suggest that its expression regulates ATAD3A in the cell.
线粒体ATAD3A是一种与多种细胞活动相关的ATP酶(AAA)结构域包含酶,参与线粒体内膜的结构组织,在儿童疾病中越来越重要。在人类中,两个ATAD3A旁系同源基因在进化过程中通过基因复制产生:ATAD3B和ATAD3C。在这里,我们研究了一直被认为是假基因的ATAD3C旁系同源基因的细胞活性。我们在HEK 293T细胞中检测到独特的ATAD3C肽段,其表达与在人体组织中的表达相似,并表明它是一种整合膜蛋白,其羧基末端暴露于膜间隙。在成纤维细胞中过表达ATAD3C而非ATAD3A,导致细胞增殖和氧消耗率降低,以及细胞ROS增加。这是由于ATAD3C单体掺入线粒体内膜的ATAD3A复合物中,使其尺寸减小。与ATAD3A在线粒体膜组织中的功能负调控一致,ATAD3C表达导致内膜中呼吸链二聚体CIII的积累增加,不利于组装在呼吸超复合物中的CIII。我们的结果证明了ATAD3C旁系同源基因的负显性作用,对线粒体氧化磷酸化功能有影响,并表明其表达在细胞中调节ATAD3A。