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August 30, 2007Journal of Virology263 citationsOpen Access

Structure of Adeno-Associated Virus Serotype 8, a Gene Therapy Vector

HNHyun-Joo NamMLMichael Douglas LaneEPEric Padron

Key Result

The crystal structure of the adeno-associated virus serotype 8 capsid was determined to 2.6-Å resolution, revealing surface structural differences from AAV2 that may explain its enhanced liver tropism.

Structured PICO

P
Population
Adeno-associated virus serotype 8 (AAV8) viral capsid
I
Intervention
Crystal structure determination
C
Comparator
AAV2 and AAV4 crystal structures
O
Outcome
Crystal structure of the AAV8 viral capsid at 2.6-A resolutionsurrogate

The determination of the AAV8 crystal structure provides a structural basis for its differential tissue tropism and non-heparin-binding phenotype, aiding future mutagenesis efforts for gene therapy vectors.

Limitations

  • The N-terminal unique region of VP1, the VP1-VP2 overlapping region, and the first 14 to 16 N-terminal residues of VP3 are disordered.
  • The identity of the ordered purine base in the capsid interior could not be determined from the electron density.

Abstract

Adeno-associated viruses (AAVs) are being developed as gene therapy vectors, and their efficacy could be improved by a detailed understanding of their viral capsid structures. AAV serotype 8 (AAV8) shows a significantly greater liver transduction efficiency than those of other serotypes, which has resulted in efforts to develop this virus as a gene therapy vector for hemophilia A and familial hypercholesterolemia. Pseudotyping studies show that the differential tissue tropism and transduction efficiencies exhibited by the AAVs result from differences in their capsid viral protein (VP) amino acids. Towards identifying the structural features underpinning these disparities, we report the crystal structure of the AAV8 viral capsid determined to 2.6-A resolution. The overall topology of its common overlapping VP is similar to that previously reported for the crystal structures of AAV2 and AAV4, with an eight-stranded beta-barrel and long loops between the beta-strands. The most significant structural differences between AAV8 and AAV2 (the best-characterized serotype) are located on the capsid surface at protrusions surrounding the two-, three-, and fivefold axes at residues reported to control transduction efficiency and antibody recognition for AAV2. In addition, a comparison of the AAV8 and AAV2 capsid surface amino acids showed a reduced distribution of basic charge for AAV8 at the mapped AAV2 heparin sulfate receptor binding region, consistent with an observed non-heparin-binding phenotype for AAV8. Thus, this AAV8 structure provides an additional platform for mutagenesis efforts to characterize AAV capsid regions responsible for differential cellular tropism, transduction, and antigenicity for these promising gene therapy vectors.

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Cite This Study

Nam et al. (2007) studied this question. The crystal structure of the adeno-associated virus serotype 8 capsid was determined to 2.6-Å resolution, revealing surface structural differences from AAV2 that may explain its enhanced liver tropism.

synapsesocial.com/papers/6a1ac8b7739ab56a9085f679https://doi.org/10.1128/jvi.01304-07
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