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CRISPR-targetedMAGT1insertion restores XMEN patient hematopoietic stem cells and lymphocytes
Author(s) -
Julie Brault,
Taylor Liu,
Ezekiel Bello,
Siyuan Liu,
Colin L. Sweeney,
Ronald J. Meis,
Sherry Koontz,
Cristina Corsino,
Uimook Choi,
Guillaume Vayssière,
Marita Bosticardo,
Kennichi Dowdell,
Cícera R. Lazzarotto,
Aaron B. Clark,
Luigi D. Notarangelo,
Juan C. Ravell,
Michael J. Lenardo,
Benjamin P. Kleinstiver,
Shengdar Q. Tsai,
Xiaolin Wu,
Gary A. Dahl,
Harry L. Malech,
Suk See De Ravin
Publication year - 2021
Publication title -
blood
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 5.515
H-Index - 465
eISSN - 1528-0020
pISSN - 0006-4971
DOI - 10.1182/blood.2021011192
Subject(s) - genetic enhancement , biology , haematopoiesis , crispr , progenitor cell , stem cell , severe combined immunodeficiency , genome editing , cancer research , immunology , gene , microbiology and biotechnology , genetics
XMEN disease, defined as “X-linked MAGT1 deficiency with increased susceptibility to Epstein-Barr virus infection and N-linked glycosylation defect,” is a recently described primary immunodeficiency marked by defective T cells and natural killer (NK) cells. Unfortunately, a potentially curative hematopoietic stem cell transplantation is associated with high mortality rates. We sought to develop an ex vivo targeted gene therapy approach for patients with XMEN using a CRISPR/Cas9 adeno-associated vector (AAV) to insert a therapeutic MAGT1 gene at the constitutive locus under the regulation of the endogenous promoter. Clinical translation of CRISPR/Cas9 AAV-targeted gene editing (GE) is hampered by low engraftable gene-edited hematopoietic stem and progenitor cells (HSPCs). Here, we optimized GE conditions by transient enhancement of homology-directed repair while suppressing AAV-associated DNA damage response to achieve highly efficient (>60%) genetic correction in engrafting XMEN HSPCs in transplanted mice. Restored MAGT1 glycosylation function in human NK and CD8+ T cells restored NK group 2 member D (NKG2D) expression and function in XMEN lymphocytes for potential treatment of infections, and it corrected HSPCs for long-term gene therapy, thus offering 2 efficient therapeutic options for XMEN poised for clinical translation.

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