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Role of the lipid transport protein StarD7 in mitochondrial dynamics
Institution:1. Laboratory of Vascular Signaling Research, MIGAL-Galilee Research Institute, Ltd., Kiryat Shmona, Israel;2. Tel-Hai College, Upper Galilee, Israel;3. The Cardiovascular Research Laboratory, Research institute, Galilee Medical Center, Nahariya, Israel;4. The Azrieli Faculty of Medicine, Bar-Ilan University, Safed, Israel;5. The Cardiology Department, Galilee Medical Center, Nahariya, Israel;1. National Centre for Cell Science, S P Pune University Campus, Ganeshkhind, Pune 411007, India;2. Department of Biological Sciences, BITS Pilani, K. K. Birla Goa Campus, NH 17B, Zuarinagar, Goa 403726, India;3. Indian Institute of Chemical Biology; 4, Raja S C Mullick Road, Jadavpur, Kolkata 700032, India;4. Roswell Park Comprehensive Cancer Center, Buffalo, NY 14203, United States of America;1. Centre de Recherche en Organogénèse Expérimentale de l''Université Laval/LOEX, Axe médecine régénératrice, Centre de recherche du CHU de Québec-Université Laval, Québec, QC G1J 1Z4, Canada;2. Faculté de pharmacie de l''Université Laval, Québec, QC G1J 1A4, Canada;3. Centre de recherche de l''Institut universitaire de cardiologie et de pneumologie de Québec, QC G1V 4G5, Canada;4. Département de médecine, Faculté de médecine de l''Université Laval, Québec, QC G1V 0A6, Canada;1. Department of Biochemistry and Molecular Biology, Hubei Provincial Key Laboratory of Developmentally Originated Disease, Wuhan University School of Basic Medical Sciences, Wuhan, Hubei 430071, China;2. Department of Pharmacy, Zhongnan Hospital of Wuhan University, Wuhan, Hubei 430071, China
Abstract:Mitochondria are dynamic organelles crucial for cell function and survival implicated in oxidative energy production whose central functions are tightly controlled by lipids. StarD7 is a lipid transport protein involved in the phosphatidylcholine (PC) delivery to mitochondria. Previous studies have shown that StarD7 knockdown induces alterations in mitochondria and endoplasmic reticulum (ER) with a reduction in PC content, however whether StarD7 modulates mitochondrial dynamics remains unexplored. Here, we generated HTR-8/SVneo stable cells expressing the precursor StarD7.I and the mature processed StarD7.II isoforms. We demonstrated that StarD7.I overexpression altered mitochondrial morphology increasing its fragmentation, whereas no changes were observed in StarD7.II-overexpressing cells compared to the control (Ct) stable cells. StarD7.I (D7.I) stable cells were able to transport higher fluorescent PC analog to mitochondria than Ct cells, yield mitochondrial fusions, maintained the membrane potential, and produced lower levels of reactive oxygen species (ROS). Additionally, the expression of Dynamin Related Protein 1 (Drp1) and Mitofusin (Mfn2) proteins were increased, whereas the amount of Mitofusin 1 (Mfn1) decreased. Moreover, transfections with plasmids encoding Drp1-K38A, Drp1-S637D or Drp1-S637A mutants indicated that mitochondrial fragmentation in D7.I cells occurs in a fission-dependent manner via Drp1. In contrast, StarD7 silencing decreased Mfn1 and Mfn2 fusion proteins without modification of Drp1 protein level. These cells increased ROS levels and presented donut-shape mitochondria, indicative of metabolic stress. Altogether our findings provide novel evidence indicating that alterations in StarD7.I expression produce significant changes in mitochondrial morphology and dynamics.
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