Tyrosine phosphorylation by Src within the cavity of the adenine nucleotide translocase 1 regulates ADP/ATP exchange in mitochondria

Author:

Feng Jianhua12,Lucchinetti Eliana1,Enkavi Giray3,Wang Yi3,Gehrig Peter4,Roschitzki Bernd4,Schaub Marcus C.5,Tajkhorshid Emad3,Zaugg Kathrin2,Zaugg Michael1

Affiliation:

1. Department of Anesthesiology and Pain Medicine, University of Alberta, Edmonton, Alberta, Canada;

2. Department of Radiation Oncology, University Hospital, Zurich, Switzerland;

3. Department of Biochemistry, Center for Biophysics and Computational Biology, and Beckman Institute, University of Illinois Urbana-Champaign, Urbana, Illinois; and

4. Functional Genomics Center Zurich, Swiss Federal Institute of Technology Zurich and University of Zurich, and

5. Institute of Pharmacology and Toxicology, University of Zurich, Zurich, Switzerland

Abstract

Phosphorylation of adenine nucleotide translocator 1 (ANT1) at residue Y194, which is part of the aromatic ladder located within the lumen of the carrier, critically regulates mitochondrial metabolism. Recent data support the concept that members of the Src family of nonreceptor tyrosine kinases are constitutively present in mitochondria and key to regulation of mitochondrial function. Herein, we demonstrate that site mutations of ANT1 (Y190→F190, Y194→F194) mimicking dephosphorylation of the aromatic ladder resulted in loss of oxidative growth and ADP/ATP exchange activity in respiration-incompetent yeast expressing mutant chimeric yN-hANT1. ANT1 is phosphorylated at Y194 by the Src family kinase members Src and Lck, and increased phosphorylation is tightly linked to reduced cell injury in preconditioned protected vs. unprotected cardiac mitochondria. Molecular dynamics simulations find the overall structure of the phosphorylated ANT1 stable, but with an increased steric flexibility in the region of the aromatic ladder, matrix loop m2, and four helix-linking regions. Combined with an analysis of the putative cytosolic salt bridge network, we reason that the effect of phosphorylation on transport is likely due to an accelerated transition between the main two conformational states (c↔m) of the carrier during the transport cycle. Since “aromatic signatures” are typical for other mitochondrial carrier proteins with important biological functions, our results may be more general and applicable to these carriers.

Publisher

American Physiological Society

Subject

Cell Biology,Physiology

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