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Photoreceptor Rescue by an Abbreviated Human RPGR Gene in a Murine Model of X-linked Retinitis Pigmentosa

The X-linked RP3 gene codes for the ciliary protein RPGR and accounts for over 10% of inherited retinal degenerations. The critical RPGR-ORF15 splice variant contains a highly repetitive purine-rich linker region that renders it unstable and difficult to adapt for gene therapy. To test the hypothesi...

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Autores principales: Pawlyk, Basil S., Adamian, Michael, Sun, Xun, Bulgakov, Oleg V., Shu, Xinhua, Smith, Alexander J., Berson, Eliot L., Ali, Robin R., Khani, Shahrokh, F.Wright, Alan, Sandberg, Michael A., Li, Tiansen
Formato: Online Artículo Texto
Lenguaje:English
Publicado: 2015
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4863462/
https://www.ncbi.nlm.nih.gov/pubmed/26348595
http://dx.doi.org/10.1038/gt.2015.93
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author Pawlyk, Basil S.
Adamian, Michael
Sun, Xun
Bulgakov, Oleg V.
Shu, Xinhua
Smith, Alexander J.
Berson, Eliot L.
Ali, Robin R.
Khani, Shahrokh
F.Wright, Alan
Sandberg, Michael A.
Li, Tiansen
author_facet Pawlyk, Basil S.
Adamian, Michael
Sun, Xun
Bulgakov, Oleg V.
Shu, Xinhua
Smith, Alexander J.
Berson, Eliot L.
Ali, Robin R.
Khani, Shahrokh
F.Wright, Alan
Sandberg, Michael A.
Li, Tiansen
author_sort Pawlyk, Basil S.
collection PubMed
description The X-linked RP3 gene codes for the ciliary protein RPGR and accounts for over 10% of inherited retinal degenerations. The critical RPGR-ORF15 splice variant contains a highly repetitive purine-rich linker region that renders it unstable and difficult to adapt for gene therapy. To test the hypothesis that the precise length of the linker region is not critical for function, we evaluated whether AAV-mediated replacement gene therapy with a human ORF15 variant containing in-frame shortening of the linker region could reconstitute RPGR function in vivo. We delivered human RPGR-ORF15 replacement genes with deletion of most (314-codons, “short form”) or 1/3 (126-codons, “long form”) of the linker region to Rpgr null mice. Human RPGR-ORF15 expression was detected post-treatment with both forms of ORF15 transgenes. However, only the long form correctly localized to the connecting cilia and led to significant functional and morphological rescue of rods and cones. Thus the highly repetitive region of RPGR is functionally important but that moderate shortening of its length, which confers the advantage of added stability, preserves its function. These findings provide a theoretical basis for optimizing replacement gene design in clinical trials for X-linked RP3.
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spelling pubmed-48634622016-05-18 Photoreceptor Rescue by an Abbreviated Human RPGR Gene in a Murine Model of X-linked Retinitis Pigmentosa Pawlyk, Basil S. Adamian, Michael Sun, Xun Bulgakov, Oleg V. Shu, Xinhua Smith, Alexander J. Berson, Eliot L. Ali, Robin R. Khani, Shahrokh F.Wright, Alan Sandberg, Michael A. Li, Tiansen Gene Ther Article The X-linked RP3 gene codes for the ciliary protein RPGR and accounts for over 10% of inherited retinal degenerations. The critical RPGR-ORF15 splice variant contains a highly repetitive purine-rich linker region that renders it unstable and difficult to adapt for gene therapy. To test the hypothesis that the precise length of the linker region is not critical for function, we evaluated whether AAV-mediated replacement gene therapy with a human ORF15 variant containing in-frame shortening of the linker region could reconstitute RPGR function in vivo. We delivered human RPGR-ORF15 replacement genes with deletion of most (314-codons, “short form”) or 1/3 (126-codons, “long form”) of the linker region to Rpgr null mice. Human RPGR-ORF15 expression was detected post-treatment with both forms of ORF15 transgenes. However, only the long form correctly localized to the connecting cilia and led to significant functional and morphological rescue of rods and cones. Thus the highly repetitive region of RPGR is functionally important but that moderate shortening of its length, which confers the advantage of added stability, preserves its function. These findings provide a theoretical basis for optimizing replacement gene design in clinical trials for X-linked RP3. 2015-09-08 2016-02 /pmc/articles/PMC4863462/ /pubmed/26348595 http://dx.doi.org/10.1038/gt.2015.93 Text en http://www.nature.com/authors/editorial_policies/license.html#terms Users may view, print, copy, and download text and data-mine the content in such documents, for the purposes of academic research, subject always to the full Conditions of use:http://www.nature.com/authors/editorial_policies/license.html#terms
spellingShingle Article
Pawlyk, Basil S.
Adamian, Michael
Sun, Xun
Bulgakov, Oleg V.
Shu, Xinhua
Smith, Alexander J.
Berson, Eliot L.
Ali, Robin R.
Khani, Shahrokh
F.Wright, Alan
Sandberg, Michael A.
Li, Tiansen
Photoreceptor Rescue by an Abbreviated Human RPGR Gene in a Murine Model of X-linked Retinitis Pigmentosa
title Photoreceptor Rescue by an Abbreviated Human RPGR Gene in a Murine Model of X-linked Retinitis Pigmentosa
title_full Photoreceptor Rescue by an Abbreviated Human RPGR Gene in a Murine Model of X-linked Retinitis Pigmentosa
title_fullStr Photoreceptor Rescue by an Abbreviated Human RPGR Gene in a Murine Model of X-linked Retinitis Pigmentosa
title_full_unstemmed Photoreceptor Rescue by an Abbreviated Human RPGR Gene in a Murine Model of X-linked Retinitis Pigmentosa
title_short Photoreceptor Rescue by an Abbreviated Human RPGR Gene in a Murine Model of X-linked Retinitis Pigmentosa
title_sort photoreceptor rescue by an abbreviated human rpgr gene in a murine model of x-linked retinitis pigmentosa
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4863462/
https://www.ncbi.nlm.nih.gov/pubmed/26348595
http://dx.doi.org/10.1038/gt.2015.93
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