Fine-Tuning of Drp1/Fis1 Availability by AKAP121/Siah2 Regulates Mitochondrial Adaptation to Hypoxia

Dynamins Longevity Myocardial Ischemia A Kinase Anchor Proteins Apoptosis Mice, Transgenic Membrane Fusion Cell Line Mitochondrial Proteins Mice 03 medical and health sciences Animals Humans Caenorhabditis elegans Caenorhabditis elegans Proteins Hypoxia Molecular Biology 0303 health sciences Lentivirus Cell Biology Adaptation, Physiological Immunohistochemistry Mitochondria 3. Good health Mitochondrial Membranes
DOI: 10.1016/j.molcel.2011.08.045 Publication Date: 2011-11-18T01:20:35Z
ABSTRACT
Defining the mechanisms underlying the control of mitochondrial fusion and fission is critical to understanding cellular adaptation to diverse physiological conditions. Here we demonstrate that hypoxia induces fission of mitochondrial membranes, dependent on availability of the mitochondrial scaffolding protein AKAP121. AKAP121 controls mitochondria dynamics through PKA-dependent inhibitory phosphorylation of Drp1 and PKA-independent inhibition of Drp1-Fis1 interaction. Reduced availability of AKAP121 by the ubiquitin ligase Siah2 relieves Drp1 inhibition by PKA and increases its interaction with Fis1, resulting in mitochondrial fission. High AKAP121 levels, seen in cells lacking Siah2, attenuate fission and reduce apoptosis of cardiomyocytes under simulated ischemia. Infarct size and degree of cell death were reduced in Siah2(-/-) mice subjected to myocardial infarction. Inhibition of Siah2 or Drp1 in hatching C. elegans reduces their life span. Through modulating Fis1/Drp1 complex availability, our studies identify Siah2 as a key regulator of hypoxia-induced mitochondrial fission and its physiological significance in ischemic injury and nematode life span.
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