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Maaike De Cock

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Open access Jul 2026

CD4-directed nanoblades enable selective genome editing in CD4+ cells and HIV suppression in vitro and in vivo

Current antiretroviral therapies suppress HIV replication but fail to eliminate integrated proviral DNA in long-lived CD4⁺ cells, precluding a cure. CRISPR-Cas9 offers potential for HIV eradication but efficient and cell-specific delivery into HIV target cells remains a major hurdle. We developed CD4-directed Nanoblades (CD4-NBs), murine leukemia virus-like particles pseudotyped with anti-CD4 nanobodies and a fusogenic glycoprotein VSV Gmut, to selectively deliver Cas9-gRNA ribonucleoproteins into CD4⁺ cells. CD4-NBs selectively delivered cargo to CD4⁺ cells in vitro and in vivo, achieving efficient gene disruption in primary CD4+ cells. Dual-guide CD4-NBs targeting conserved HIV tat/rev/env regions disrupted proviral DNA, suppressing HIV infection in CD4+ cells. In HIV-infected, ART-pretreated humanized mice, CD4-NBs significantly reduced plasma viremia. While full tissue reservoir clearance was not achieved, repeated dosing did reduce viral RNA and proviral DNA in bone marrow and lungs, respectively. As such, this proof-of-concept study supports the promise of CD4-NBs as a minimally invasive, CD4⁺ cell-targeted gene editing strategy for HIV therapy. Virus-like particles engineered with anti-CD4 nanobodies (i.e., CD4-directed nanoblades) present a promising HIV cure strategy as they achieve CD4+ cell-specific CRISPR-Cas9 delivery, efficient gene editing, HIV proviral DNA disruption and reduced viremia in ART-pretreated humanized mice. CD4-NBs were engineered by pseudotyping murine leukemia virus-like particles with anti-CD4 nanobodies and a fusogenic glycoprotein to enable targeted Cas9-gRNA ribonucleoprotein delivery. Selective cargo delivery was achieved in vitro and in vivo, with efficient gene disruption observed specifically in (primary) CD4⁺ cells. HIV proviral DNA was disrupted using dual-guide CD4-NBs targeting conserved HIV tat/rev/env regions, resulting in suppressed HIV infection in CD4⁺ cells. In HIV-infected, ART-pretreated humanized mice, viremia was significantly reduced following CD4-NB administration. Repeated CD4-NB dosing was associated with reductions in viral RNA and proviral DNA in bone marrow and lungs, respectively, though full tissue reservoir clearance was not achieved. CD4-NBs were engineered by pseudotyping murine leukemia virus-like particles with anti-CD4 nanobodies and a fusogenic glycoprotein to enable targeted Cas9-gRNA ribonucleoprotein delivery. Selective cargo delivery was achieved in vitro and in vivo, with efficient gene disruption observed specifically in (primary) CD4⁺ cells. HIV proviral DNA was disrupted using dual-guide CD4-NBs targeting conserved HIV tat/rev/env regions, resulting in suppressed HIV infection in CD4⁺ cells. In HIV-infected, ART-pretreated humanized mice, viremia was significantly reduced following CD4-NB administration. Repeated CD4-NB dosing was associated with reductions in viral RNA and proviral DNA in bone marrow and lungs, respectively, though full tissue reservoir clearance was not achieved. Virus-like particles engineered with anti-CD4 nanobodies (i.e., CD4-directed nanoblades) present a promising HIV cure strategy as they achieve CD4+ cell-specific CRISPR-Cas9 delivery, efficient gene editing, HIV proviral DNA disruption and reduced viremia in ART-pretreated humanized mice.

Jolien Van Cleemput, Maaike De Cock, R. Verbeek et al. · 0 citations