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Full-length ATP7B reconstituted through protein trans-splicing corrects Wilson disease in mice

Wilson disease (WD) is a genetic disorder of copper homeostasis, caused by deficiency of the copper transporter ATP7B. Gene therapy with recombinant adeno-associated vectors (AAV) holds promises for WD treatment. However, the full-length human ATP7B gene exceeds the limited AAV cargo capacity, hampe...

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Autores principales: Padula, Agnese, Petruzzelli, Raffaella, Philbert, Sasha A., Church, Stephanie J., Esposito, Federica, Campione, Severo, Monti, Marcello, Capolongo, Filomena, Perna, Claudia, Nusco, Edoardo, Schmidt, Hartmut H., Auricchio, Alberto, Cooper, Garth J.S., Polishchuk, Roman, Piccolo, Pasquale
Formato: Online Artículo Texto
Lenguaje:English
Publicado: American Society of Gene & Cell Therapy 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9436707/
https://www.ncbi.nlm.nih.gov/pubmed/36092366
http://dx.doi.org/10.1016/j.omtm.2022.08.004
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author Padula, Agnese
Petruzzelli, Raffaella
Philbert, Sasha A.
Church, Stephanie J.
Esposito, Federica
Campione, Severo
Monti, Marcello
Capolongo, Filomena
Perna, Claudia
Nusco, Edoardo
Schmidt, Hartmut H.
Auricchio, Alberto
Cooper, Garth J.S.
Polishchuk, Roman
Piccolo, Pasquale
author_facet Padula, Agnese
Petruzzelli, Raffaella
Philbert, Sasha A.
Church, Stephanie J.
Esposito, Federica
Campione, Severo
Monti, Marcello
Capolongo, Filomena
Perna, Claudia
Nusco, Edoardo
Schmidt, Hartmut H.
Auricchio, Alberto
Cooper, Garth J.S.
Polishchuk, Roman
Piccolo, Pasquale
author_sort Padula, Agnese
collection PubMed
description Wilson disease (WD) is a genetic disorder of copper homeostasis, caused by deficiency of the copper transporter ATP7B. Gene therapy with recombinant adeno-associated vectors (AAV) holds promises for WD treatment. However, the full-length human ATP7B gene exceeds the limited AAV cargo capacity, hampering the applicability of AAV in this disease context. To overcome this limitation, we designed a dual AAV vector approach using split intein technology. Split inteins catalyze seamless ligation of two separate polypeptides in a highly specific manner. We selected a DnaE intein from Nostoc punctiforme (Npu) that recognizes a specific tripeptide in the human ATP7B coding sequence. We generated two AAVs expressing either the 5′-half of a codon-optimized human ATP7B cDNA followed by the N-terminal Npu DnaE intein or the C-terminal Npu DnaE intein followed by the 3′-half of ATP7B cDNA, under the control of a liver-specific promoter. Intravenous co-injection of the two vectors in wild-type and Atp7b(−/−) mice resulted in efficient reconstitution of full-length ATP7B protein in the liver. Moreover, Atp7b(−/−) mice treated with intein-ATP7B vectors were protected from liver damage and showed improvements in copper homeostasis. Taken together, these data demonstrate the efficacy of split intein technology to drive the reconstitution of full-length human ATP7B and to rescue copper-mediated liver damage in Atp7b(−/−) mice, paving the way to the development of a new gene therapy approach for WD.
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spelling pubmed-94367072022-09-10 Full-length ATP7B reconstituted through protein trans-splicing corrects Wilson disease in mice Padula, Agnese Petruzzelli, Raffaella Philbert, Sasha A. Church, Stephanie J. Esposito, Federica Campione, Severo Monti, Marcello Capolongo, Filomena Perna, Claudia Nusco, Edoardo Schmidt, Hartmut H. Auricchio, Alberto Cooper, Garth J.S. Polishchuk, Roman Piccolo, Pasquale Mol Ther Methods Clin Dev Original Article Wilson disease (WD) is a genetic disorder of copper homeostasis, caused by deficiency of the copper transporter ATP7B. Gene therapy with recombinant adeno-associated vectors (AAV) holds promises for WD treatment. However, the full-length human ATP7B gene exceeds the limited AAV cargo capacity, hampering the applicability of AAV in this disease context. To overcome this limitation, we designed a dual AAV vector approach using split intein technology. Split inteins catalyze seamless ligation of two separate polypeptides in a highly specific manner. We selected a DnaE intein from Nostoc punctiforme (Npu) that recognizes a specific tripeptide in the human ATP7B coding sequence. We generated two AAVs expressing either the 5′-half of a codon-optimized human ATP7B cDNA followed by the N-terminal Npu DnaE intein or the C-terminal Npu DnaE intein followed by the 3′-half of ATP7B cDNA, under the control of a liver-specific promoter. Intravenous co-injection of the two vectors in wild-type and Atp7b(−/−) mice resulted in efficient reconstitution of full-length ATP7B protein in the liver. Moreover, Atp7b(−/−) mice treated with intein-ATP7B vectors were protected from liver damage and showed improvements in copper homeostasis. Taken together, these data demonstrate the efficacy of split intein technology to drive the reconstitution of full-length human ATP7B and to rescue copper-mediated liver damage in Atp7b(−/−) mice, paving the way to the development of a new gene therapy approach for WD. American Society of Gene & Cell Therapy 2022-08-13 /pmc/articles/PMC9436707/ /pubmed/36092366 http://dx.doi.org/10.1016/j.omtm.2022.08.004 Text en © 2022 The Author(s) https://creativecommons.org/licenses/by/4.0/This is an open access article under the CC BY license (http://creativecommons.org/licenses/by/4.0/).
spellingShingle Original Article
Padula, Agnese
Petruzzelli, Raffaella
Philbert, Sasha A.
Church, Stephanie J.
Esposito, Federica
Campione, Severo
Monti, Marcello
Capolongo, Filomena
Perna, Claudia
Nusco, Edoardo
Schmidt, Hartmut H.
Auricchio, Alberto
Cooper, Garth J.S.
Polishchuk, Roman
Piccolo, Pasquale
Full-length ATP7B reconstituted through protein trans-splicing corrects Wilson disease in mice
title Full-length ATP7B reconstituted through protein trans-splicing corrects Wilson disease in mice
title_full Full-length ATP7B reconstituted through protein trans-splicing corrects Wilson disease in mice
title_fullStr Full-length ATP7B reconstituted through protein trans-splicing corrects Wilson disease in mice
title_full_unstemmed Full-length ATP7B reconstituted through protein trans-splicing corrects Wilson disease in mice
title_short Full-length ATP7B reconstituted through protein trans-splicing corrects Wilson disease in mice
title_sort full-length atp7b reconstituted through protein trans-splicing corrects wilson disease in mice
topic Original Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9436707/
https://www.ncbi.nlm.nih.gov/pubmed/36092366
http://dx.doi.org/10.1016/j.omtm.2022.08.004
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