Mechanism of neuroprotective mitochondrial remodeling by PKA/AKAP1.
dc.contributor.author | Merrill, Ronald A | |
dc.contributor.author | Dagda, Ruben K | |
dc.contributor.author | Dickey, Audrey S | |
dc.contributor.author | Cribbs, J Thomas | |
dc.contributor.author | Green, Steven H | |
dc.contributor.author | Usachev, Yuriy M | |
dc.contributor.author | Strack, Stefan | |
dc.coverage.spatial | United States | |
dc.date.accessioned | 2017-10-27T18:28:57Z | |
dc.date.available | 2017-10-27T18:28:57Z | |
dc.date.issued | 2011-04 | |
dc.description.abstract | Mitochondrial shape is determined by fission and fusion reactions catalyzed by large GTPases of the dynamin family, mutation of which can cause neurological dysfunction. While fission-inducing protein phosphatases have been identified, the identity of opposing kinase signaling complexes has remained elusive. We report here that in both neurons and non-neuronal cells, cAMP elevation and expression of an outer-mitochondrial membrane (OMM) targeted form of the protein kinase A (PKA) catalytic subunit reshapes mitochondria into an interconnected network. Conversely, OMM-targeting of the PKA inhibitor PKI promotes mitochondrial fragmentation upstream of neuronal death. RNAi and overexpression approaches identify mitochondria-localized A kinase anchoring protein 1 (AKAP1) as a neuroprotective and mitochondria-stabilizing factor in vitro and in vivo. According to epistasis studies with phosphorylation site-mutant dynamin-related protein 1 (Drp1), inhibition of the mitochondrial fission enzyme through a conserved PKA site is the principal mechanism by which cAMP and PKA/AKAP1 promote both mitochondrial elongation and neuronal survival. Phenocopied by a mutation that slows GTP hydrolysis, Drp1 phosphorylation inhibits the disassembly step of its catalytic cycle, accumulating large, slowly recycling Drp1 oligomers at the OMM. Unopposed fusion then promotes formation of a mitochondrial reticulum, which protects neurons from diverse insults. | |
dc.identifier | ||
dc.identifier.eissn | 1545-7885 | |
dc.identifier.uri | ||
dc.language | eng | |
dc.publisher | Public Library of Science (PLoS) | |
dc.relation.ispartof | PLoS Biol | |
dc.relation.isversionof | 10.1371/journal.pbio.1000612 | |
dc.subject | A Kinase Anchor Proteins | |
dc.subject | Animals | |
dc.subject | Apoptosis | |
dc.subject | Cell Survival | |
dc.subject | Cells, Cultured | |
dc.subject | Colforsin | |
dc.subject | Cyclic AMP | |
dc.subject | Cyclic AMP-Dependent Protein Kinases | |
dc.subject | Dynamins | |
dc.subject | Hippocampus | |
dc.subject | Homeostasis | |
dc.subject | Humans | |
dc.subject | Mitochondria | |
dc.subject | Mitochondrial Membranes | |
dc.subject | Neurons | |
dc.subject | Organelle Shape | |
dc.subject | Phosphorylation | |
dc.subject | Protein Multimerization | |
dc.subject | Protein Transport | |
dc.subject | Rats | |
dc.title | Mechanism of neuroprotective mitochondrial remodeling by PKA/AKAP1. | |
dc.type | Journal article | |
duke.contributor.orcid | Dickey, Audrey S|0000-0001-7490-2769 | |
pubs.author-url | ||
pubs.begin-page | e1000612 | |
pubs.issue | 4 | |
pubs.organisational-group | Clinical Science Departments | |
pubs.organisational-group | Duke | |
pubs.organisational-group | Neurology | |
pubs.organisational-group | Neurology, Behavioral Neurology | |
pubs.organisational-group | School of Medicine | |
pubs.publication-status | Published | |
pubs.volume | 9 |
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