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Rescuing AAV gene transfer from neutralizing antibodies with an IgG-degrading enzyme
Zachary C. Elmore, Daniel K. Oh, Katherine E. Simon, Marco M. Fanous, Aravind Asokan
Zachary C. Elmore, Daniel K. Oh, Katherine E. Simon, Marco M. Fanous, Aravind Asokan
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Resource and Technical Advance Immunology Therapeutics

Rescuing AAV gene transfer from neutralizing antibodies with an IgG-degrading enzyme

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Abstract

Preexisting humoral immunity to recombinant adeno-associated virus (AAV) vectors restricts the treatable patient population and efficacy of human gene therapies. Approaches to clear neutralizing antibodies (NAbs), such as plasmapheresis and immunosuppression, are either ineffective or cause undesirable side effects. Here, we describe a clinically relevant strategy to rapidly and transiently degrade NAbs before AAV administration using an IgG-degrading enzyme (IdeZ). We demonstrate that recombinant IdeZ efficiently cleaved IgG in dog, monkey, and human antisera. Prophylactically administered IdeZ cleaved circulating human IgG in mice and prevented AAV neutralization in vivo. In macaques, a single intravenous dose of IdeZ rescued AAV transduction by transiently reversing seropositivity. Importantly, IdeZ efficiently cleaved NAbs and rescued AAV transduction in mice passively immunized with individual human donor sera representing a diverse population. Our antibody clearance approach presents a potentially new paradigm for expanding the prospective patient cohort and improving efficacy of AAV gene therapy.

Authors

Zachary C. Elmore, Daniel K. Oh, Katherine E. Simon, Marco M. Fanous, Aravind Asokan

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Figure 2

IdeZ rescues AAV8 and AAV9 liver transduction in passively immunized mice and cynomolgus macaques with preexisting NAbs.

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IdeZ rescues AAV8 and AAV9 liver transduction in passively immunized mic...
(A) Experimental timeline of IgG, IdeZ, and AAV8- or AAV9-Luc injections. Sac., sacrifice followed by tissue harvest. Mice were injected IP with pooled human IgG. The same mice were injected IV 24 hours later with PBS or recombinant GST-IdeZ (2.5 mg/kg). AAV8-Luc or AAV9-Luc was injected 72 hours post–IdeZ treatment at a dose of 1 × 1013 vg/kg. Luciferase transgene expression levels were analyzed 4 weeks postinjection in the liver: AAV8 (B and C) and AAV9 (D and E). Luciferase expression levels were normalized for total tissue protein concentration and represented as log relative luminescence units per gram of tissue (log RLU/g tissue). Each dot represents the average of a technical duplicate from a single animal. Biodistribution of AAV8- and AAV9-Luc vector genomes in the liver: AAV8 (F and G) and AAV9 (H and I). Vector genome copy numbers per cell were calculated by normalizing Luc copy numbers to copies of the lamin B2 housekeeping gene and represented as log vg/cell. Each dot represents a technical duplicate from a single animal, and the dash represents the mean value. (F, female; M, male.) (J) Schematic demonstrating experimental timeline of IdeZ and AAV9-Luc injections in nonhuman primates (NHPs). AAV9-seropositive NHP M16558 (n = 1) was administered IdeZ (0.5 mg/kg) via IV bolus injection on day 0. AAV9-Luc was administered via IV bolus injection 72 hours post–IdeZ injection at a dose of 5 × 1012 vg/kg. (K) NHP serum samples were analyzed by SDS-PAGE under reducing conditions and probed with Fc-specific antibodies. (L) Luciferase transgene expression levels were analyzed 4 weeks postinjection in the livers of NHPs. Luciferase expression levels were normalized for total tissue protein concentration and represented as log relative luminescence units per gram of tissue. Each dot represents a single experiment of an individual liver lobe from a single animal. (M) Biodistribution of AAV9-Luc vector genomes in the livers of NHPs. Vector genome copy numbers per nanogram of total extracted DNA were calculated and represented as log vg/ng DNA. Each dot represents a technical duplicate experiment of individual liver slices from a single animal, and the dash represents the mean value. Significance was determined by 1-way ANOVA with Tukey’s posttest. *P < 0.05, **P < 0.01, ***P < 0.001, ****P < 0.0001.

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