Vollständiger Abstract
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Total elimination of replication-competent human immunodeficiency virus type 1 (HIV-1) remains a major clinical challenge, in part due to random integration of the proviral DNA into host cell chromosomes, which enables lifelong persistence and production of progeny. Although antiretroviral therapies (ARTs) suppress viral replication, they cannot eliminate integrated proviral DNA, which remains a fundamental obstacle to achieving a cure. To overcome this problem, we developed a combinatorial clustered regularly interspaced short palindromic repeats-Cas9 gene editing strategy to disrupt viral replication and inactivate host factors essential for HIV-1 entry and spread. This approach targets C-C chemokine receptor type 5 (CCR5), a chemokine receptor central to HIV-1 host cell entry, and mannosyl-oligosaccharide glucosidase (MOGS), a key enzyme in glycoprotein processing that modifies the HIV-1 envelope glycoprotein gp120, facilitating receptor engagement, viral entry, and morphogenesis of infectious virion. We demonstrate that our strategy, which includes editing of the integrated proviral DNA, in concert with two cellular genes whose products facilitate viral entry, results in robust suppression of viral replication <i>in vitro</i> and in <i>ex vivo</i>-infected cells. Using transmission electron microscopy, HIV-1 p24 ELISA, and GFP-based viral infection assays, we show that the combination knockout of CCR5, MOGS, and viral sequences profoundly reduces HIV-1 replication in an <i>ex vivo</i> cellular model, that is, HIV-1-infected peripheral blood mononuclear human cells, thus offering a pathway to launch further preclinical studies.
Abstract: PubMed · Datensatz
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- CrossRef Listing of Deleted DOIs
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- 2015-01-01
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- 0849-6757
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(2015). 10.1177/1056789514562152. CrossRef Listing of Deleted DOIs. https://doi.org/10.1177/10430342261463565