Agonist-induced Down-regulation of Endogenous Protein Kinase C α through an Endolysosomal Mechanism
Protein kinase C (PKC) isozymes undergo down-regulation upon sustained stimulation. Previous studies have pointed to the existence of both proteasome-dependent and -independent pathways of PKCα processing. Here we demonstrate that these down-regulation pathways are engaged in different subcellular c...
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Veröffentlicht in: | The Journal of biological chemistry 2013-05, Vol.288 (18), p.13093-13109 |
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Zusammenfassung: | Protein kinase C (PKC) isozymes undergo down-regulation upon sustained stimulation. Previous studies have pointed to the existence of both proteasome-dependent and -independent pathways of PKCα processing. Here we demonstrate that these down-regulation pathways are engaged in different subcellular compartments; proteasomal degradation occurs mainly at the plasma membrane, whereas non-proteasomal processing occurs in the perinuclear region. Using cholesterol depletion, pharmacological inhibitors, RNA interference, and dominant-negative mutants, we define the mechanisms involved in perinuclear accumulation of PKCα and identify the non-proteasomal mechanism mediating its degradation. We show that intracellular accumulation of PKCα involves at least two clathrin-independent, cholesterol/lipid raft-mediated pathways that do not require ubiquitination of the protein; one is dynamin-dependent and likely involves caveolae, whereas the other is dynamin- and small GTPase-independent. Internalized PKCα traffics through endosomes and is delivered to the lysosome for degradation. Supportive evidence includes (a) detection of the enzyme in EEA1-positive early endosomes, Rab7-positive late endosomes/multivesicular bodies, and LAMP1-positive lysosomes and (b) inhibition of its down-regulation by lysosome-disrupting agents and leupeptin. Only limited dephosphorylation of PKCα occurs during trafficking, with fully mature enzyme being the main target for lysosomal degradation. These studies define a novel and widespread mechanism of desensitization of PKCα signaling that involves endocytic trafficking and lysosome-mediated degradation of the mature, fully phosphorylated protein.
Background: Mechanisms of endogenous PKC signal termination remain to be fully characterized.
Results: Activated endogenous PKCα undergoes dynamin-dependent and -independent endocytic uptake and traffics through early and late endosomes for processing by lysosomes.
Conclusion: Lysosomal degradation represents a novel mechanism of desensitizing PKC-mediated signaling.
Significance: Multiple degradation mechanisms ensure strict control of the duration of PKC signaling in cells. |
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ISSN: | 0021-9258 1083-351X |
DOI: | 10.1074/jbc.M112.437061 |