4.4 Article

Inhibition of HIV-1 Gag-membrane interactions by specific RNAs

Journal

RNA
Volume 23, Issue 3, Pages 395-405

Publisher

COLD SPRING HARBOR LAB PRESS, PUBLICATIONS DEPT
DOI: 10.1261/rna.058453.116

Keywords

Gag; retrovirus assembly; HIV-1; membrane binding; tRNA; viral RNA

Funding

  1. National Institutes of Health (NIH) [T32 AI007527]
  2. Ohio State University Center for RNA Biology Fellowship
  3. American Heart Association Midwest Predoctoral Fellowship [13PRE17060006]
  4. University of Michigan Rackham Predoctoral Fellowship
  5. NIH [T32 GM008512, F31 AI120868, R01 GM065056, R01 AI071727]

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HIV-1 particle assembly, which occurs at the plasma membrane (PM) of cells, is driven by the viral polyprotein Gag. Gag recognizes phosphatidylinositol-(4,5)-bisphosphate [PI(4,5) P-2], a PM-specific phospholipid, via the highly basic region (HBR) in its N-terminal matrix (MA) domain. The HBR is also known to bind to RNA. We have previously shown, using an in vitro liposome binding assay, that RNA inhibits Gag binding to membranes that lack PI(4,5) P-2. If this RNA block is removed by RNase treatment, Gag can bind nonspecifically to other negatively charged membranes. In an effort to identify the RNA species that confer this inhibition of Gag membrane binding, we have tested the impact of purified RNAs on Gag interactions with negatively charged liposomes lacking PI(4,5) P-2. We found that some tRNA species and RNAs containing stem-loop 1 of the psi region in the 5' untranslated region of the HIV-1 genome impose inhibition of Gag binding to membranes lacking PI(4,5) P-2. In contrast, a specific subset of tRNAs, as well as an RNA sequence previously selected in vitro for MA binding, failed to suppress Gag-membrane interactions. Furthermore, switching the identity of charged residues in the HBR did not diminish the susceptibility of Gag-liposome binding for each of the RNAs tested, while deletion of most of the NC domain abrogates the inhibition of membrane binding mediated by the RNAs that are inhibitory to WTGag-liposome binding. These results support a model in which NC facilitates binding of RNA to MA and thereby promotes RNA-based inhibition of Gag-membrane binding.

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