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Inhibition of retroviral Gag assembly by non-silencing miRNAs promotes autophagic viral degradation
Protein & Cell ; (12): 640-651, 2018.
Article in English | WPRIM | ID: wpr-756931
ABSTRACT
We recently reported an unconventional mechanism by which miRNAs inhibit HIV-1 viral production. This occurs when miRNAs bind nonspecifically to the viral structural protein Gag, interfering with viral RNA-mediated Gag assembly at the plasma membrane. Consequently, misassembled viral complexes are redirected into the endocytic pathway where they are delivered to lysosomes for degradation. In this study, we demonstrate that autophagy is a critical mediator of the viral degradation pathway and that this pathway is not HIV-1 specific. Misassembled viral complexes were found to colocalize extensively with LC3 and p62 in late endosomes/lysosomes, demonstrating a convergence of autophagy with functional degradative compartments. Knocking down autophagosome formation machineries reduced this convergence, while treatment with autophagy-inducer rapamycin enhanced the convergence. Furthermore, similar autophagy-dependent nonspecific miRNA inhibition of murine leukemia virus (MLV) assembly was shown. Overall, these results reveal autophagy as a crucial regulator of the retroviral degradation pathway in host cells initiated by nonspecific miRNA-Gag interactions. These findings could have significant implications for understanding how cells may regulate retroviral complex assembly by miRNA expression and autophagy, and raise the possibility that similar regulations can occur in other biological contexts.
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Full text: Available Index: WPRIM (Western Pacific) Main subject: Autophagy / Gene Products, gag / Cell Membrane / HIV-1 / Virus Assembly / MicroRNAs / HEK293 Cells / Genetics / Lysosomes / Metabolism Limits: Humans Language: English Journal: Protein & Cell Year: 2018 Type: Article

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Full text: Available Index: WPRIM (Western Pacific) Main subject: Autophagy / Gene Products, gag / Cell Membrane / HIV-1 / Virus Assembly / MicroRNAs / HEK293 Cells / Genetics / Lysosomes / Metabolism Limits: Humans Language: English Journal: Protein & Cell Year: 2018 Type: Article