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Analysis of Adeno-Associated Virus Serotype 8 (AAV8)-antibody complexes using epitope mapping by molecular imprinting leads to the identification of Fab peptides that potentially evade AAV8 neutralisation.

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posted on 2023-07-13, 08:53 authored by Elena Piletska, Philippe Veron, Bérangère Bertin, Federico Mingozzi, Donald Jones, Rachel L Norman, Joseph Earley, Kal Karim, Alvaro Garcia-Cruz, Sergey Piletsky
Gene therapy is a promising approach for treating genetic disorders by delivering therapeutic genes to replace or correct malfunctioning genes. However, the introduced gene therapy vector can trigger an immune response, leading to reduced efficacy and potential harm to the patient. To improve the efficiency and safety of gene therapy, preventing the immune response to the vector is crucial. This can be achieved through the use of immunosuppressive drugs, vector engineering to evade the immune system, or delivery methods that bypass the immune system altogether. By reducing the immune response, gene therapy can deliver therapeutic genes more effectively and potentially cure genetic diseases. In this study, a novel molecular imprinting technique, combined with mass-spectrometry and bioinformatics, was used to identify four antigen-binding fragments (Fab) sequences of Adeno-Associated Virus (AAV) - neutralising antibodies capable of binding to AAV. The identified Fab peptides were shown to prevent AAV8's binding to antibodies, demonstrating their potential to improve gene therapy efficiency by preventing the immune response.

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Citation

lena Piletska, Philippe Veron, Bérangère Bertin, Federico Mingozzi, Donald Jones, Rachel L. Norman, Joseph Earley, Kal Karim, Alvaro Garcia-Cruz, Sergey Piletsky, Analysis of Adeno-Associated Virus Serotype 8 (AAV8)-antibody complexes using epitope mapping by molecular imprinting leads to the identification of Fab peptides that potentially evade AAV8 neutralisation, Nanomedicine: Nanotechnology, Biology and Medicine, Volume 52, 2023, 102691, ISSN 1549-9634, https://doi.org/10.1016/j.nano.2023.102691

Author affiliation

School of Chemistry, University of Leicester

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  • VoR (Version of Record)

Published in

Nanomedicine : nanotechnology, biology, and medicine

Volume

52

Issue

August 2023

Pagination

102691

Publisher

Elsevier BV

issn

1549-9634

eissn

1549-9642

Acceptance date

2023-05-22

Copyright date

2023

Language

English

Deposit date

30/06/2023

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