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CD14(+)/CD31(+) monocytes expanded by UM171 correct hemophilia A in zebrafish upon lentiviral gene transfer of factor VIII

Emerging gene therapy clinical trials test the correction of hemophilia A (HA) by replacing factor VIII (FVIII) in autologous hematopoietic stem cells (HSCs). Although it is known that platelets, monocyte/macrophages, and mesenchymal stromal cells can secrete transgenic FVIII, a systematic examinati...

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Autores principales: Elnaggar, Muhammad, Al-Mohannadi, Anjud, Hasan, Waseem, Abdelrahman, Doua, Al-Kubaisi, Mohammed J., Pavlovski, Igor, Gentilcore, Giusy, Sathappan, Abbirami, Kizhakayil, Dhanya, Ali, Aesha I., Mohan, Suruchi, Olagunju, Damilola, Cugno, Chiara, Grivel, Jean-Charles, Borsotti, Chiara, Follenzi, Antonia, Da’as, Sahar I., Deola, Sara
Formato: Online Artículo Texto
Lenguaje:English
Publicado: The American Society of Hematology 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9984962/
https://www.ncbi.nlm.nih.gov/pubmed/36477543
http://dx.doi.org/10.1182/bloodadvances.2022009014
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author Elnaggar, Muhammad
Al-Mohannadi, Anjud
Hasan, Waseem
Abdelrahman, Doua
Al-Kubaisi, Mohammed J.
Pavlovski, Igor
Gentilcore, Giusy
Sathappan, Abbirami
Kizhakayil, Dhanya
Ali, Aesha I.
Mohan, Suruchi
Olagunju, Damilola
Cugno, Chiara
Grivel, Jean-Charles
Borsotti, Chiara
Follenzi, Antonia
Da’as, Sahar I.
Deola, Sara
author_facet Elnaggar, Muhammad
Al-Mohannadi, Anjud
Hasan, Waseem
Abdelrahman, Doua
Al-Kubaisi, Mohammed J.
Pavlovski, Igor
Gentilcore, Giusy
Sathappan, Abbirami
Kizhakayil, Dhanya
Ali, Aesha I.
Mohan, Suruchi
Olagunju, Damilola
Cugno, Chiara
Grivel, Jean-Charles
Borsotti, Chiara
Follenzi, Antonia
Da’as, Sahar I.
Deola, Sara
author_sort Elnaggar, Muhammad
collection PubMed
description Emerging gene therapy clinical trials test the correction of hemophilia A (HA) by replacing factor VIII (FVIII) in autologous hematopoietic stem cells (HSCs). Although it is known that platelets, monocyte/macrophages, and mesenchymal stromal cells can secrete transgenic FVIII, a systematic examination of blood lineages as extrahepatic sources of FVIII, to our knowledge, has not yet been performed. In this study, we sought to provide a comprehensive map of native and lentivirus-based transgenic FVIII production from HSC stage to mature blood cells, through a flow cytometry analysis. In addition, we generated a model of transient HA in zebrafish based on antisense RNA, to assess the corrective potential of the FVIII-transduced HSCs. We discovered that FVIII production begins at the CD34(+) progenitor stage after cytokine stimulation in culture. Among all mature white blood cells, monocytes are the largest producers of native FVIII and can maintain protein overexpression during differentiation from HSCs when transduced by a FVIII lentiviral vector. Moreover, the addition of the HSC self-renewal agonist UM171 to CD34(+) cells during transduction expanded a subpopulation of CD14(+)/CD31(+) monocytes with excellent ability to carry the FVIII transgene, allowing the correction of HA phenotype in zebrafish. Finally, the HA zebrafish model showed that f8 RNA is predominantly localized in the hematopoietic system at the larval stage, which indicates a potential contributory role of FVIII in hematopoiesis that warrants further investigation. We believe that this study may be of broad interest to hematologists and researchers striving to advance knowledge and permanent treatments for patients with HA.
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spelling pubmed-99849622023-03-05 CD14(+)/CD31(+) monocytes expanded by UM171 correct hemophilia A in zebrafish upon lentiviral gene transfer of factor VIII Elnaggar, Muhammad Al-Mohannadi, Anjud Hasan, Waseem Abdelrahman, Doua Al-Kubaisi, Mohammed J. Pavlovski, Igor Gentilcore, Giusy Sathappan, Abbirami Kizhakayil, Dhanya Ali, Aesha I. Mohan, Suruchi Olagunju, Damilola Cugno, Chiara Grivel, Jean-Charles Borsotti, Chiara Follenzi, Antonia Da’as, Sahar I. Deola, Sara Blood Adv Gene Therapy Emerging gene therapy clinical trials test the correction of hemophilia A (HA) by replacing factor VIII (FVIII) in autologous hematopoietic stem cells (HSCs). Although it is known that platelets, monocyte/macrophages, and mesenchymal stromal cells can secrete transgenic FVIII, a systematic examination of blood lineages as extrahepatic sources of FVIII, to our knowledge, has not yet been performed. In this study, we sought to provide a comprehensive map of native and lentivirus-based transgenic FVIII production from HSC stage to mature blood cells, through a flow cytometry analysis. In addition, we generated a model of transient HA in zebrafish based on antisense RNA, to assess the corrective potential of the FVIII-transduced HSCs. We discovered that FVIII production begins at the CD34(+) progenitor stage after cytokine stimulation in culture. Among all mature white blood cells, monocytes are the largest producers of native FVIII and can maintain protein overexpression during differentiation from HSCs when transduced by a FVIII lentiviral vector. Moreover, the addition of the HSC self-renewal agonist UM171 to CD34(+) cells during transduction expanded a subpopulation of CD14(+)/CD31(+) monocytes with excellent ability to carry the FVIII transgene, allowing the correction of HA phenotype in zebrafish. Finally, the HA zebrafish model showed that f8 RNA is predominantly localized in the hematopoietic system at the larval stage, which indicates a potential contributory role of FVIII in hematopoiesis that warrants further investigation. We believe that this study may be of broad interest to hematologists and researchers striving to advance knowledge and permanent treatments for patients with HA. The American Society of Hematology 2022-12-10 /pmc/articles/PMC9984962/ /pubmed/36477543 http://dx.doi.org/10.1182/bloodadvances.2022009014 Text en © 2023 by The American Society of Hematology. Licensed under Creative Commons Attribution-NonCommercial-NoDerivatives 4.0 International (CC BY-NC-ND 4.0), permitting only noncommercial, nonderivative use with attribution. All other rights reserved. https://creativecommons.org/licenses/by-nc-nd/4.0/This is an open access article under the CC BY-NC-ND license (http://creativecommons.org/licenses/by-nc-nd/4.0/).
spellingShingle Gene Therapy
Elnaggar, Muhammad
Al-Mohannadi, Anjud
Hasan, Waseem
Abdelrahman, Doua
Al-Kubaisi, Mohammed J.
Pavlovski, Igor
Gentilcore, Giusy
Sathappan, Abbirami
Kizhakayil, Dhanya
Ali, Aesha I.
Mohan, Suruchi
Olagunju, Damilola
Cugno, Chiara
Grivel, Jean-Charles
Borsotti, Chiara
Follenzi, Antonia
Da’as, Sahar I.
Deola, Sara
CD14(+)/CD31(+) monocytes expanded by UM171 correct hemophilia A in zebrafish upon lentiviral gene transfer of factor VIII
title CD14(+)/CD31(+) monocytes expanded by UM171 correct hemophilia A in zebrafish upon lentiviral gene transfer of factor VIII
title_full CD14(+)/CD31(+) monocytes expanded by UM171 correct hemophilia A in zebrafish upon lentiviral gene transfer of factor VIII
title_fullStr CD14(+)/CD31(+) monocytes expanded by UM171 correct hemophilia A in zebrafish upon lentiviral gene transfer of factor VIII
title_full_unstemmed CD14(+)/CD31(+) monocytes expanded by UM171 correct hemophilia A in zebrafish upon lentiviral gene transfer of factor VIII
title_short CD14(+)/CD31(+) monocytes expanded by UM171 correct hemophilia A in zebrafish upon lentiviral gene transfer of factor VIII
title_sort cd14(+)/cd31(+) monocytes expanded by um171 correct hemophilia a in zebrafish upon lentiviral gene transfer of factor viii
topic Gene Therapy
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9984962/
https://www.ncbi.nlm.nih.gov/pubmed/36477543
http://dx.doi.org/10.1182/bloodadvances.2022009014
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