Highly efficient therapeutic gene editing of human hematopoietic stem cells

被引:0
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作者
Yuxuan Wu
Jing Zeng
Benjamin P. Roscoe
Pengpeng Liu
Qiuming Yao
Cicera R. Lazzarotto
Kendell Clement
Mitchel A. Cole
Kevin Luk
Cristina Baricordi
Anne H. Shen
Chunyan Ren
Erica B. Esrick
John P. Manis
David M. Dorfman
David A. Williams
Alessandra Biffi
Carlo Brugnara
Luca Biasco
Christian Brendel
Luca Pinello
Shengdar Q. Tsai
Scot A. Wolfe
Daniel E. Bauer
机构
[1] Division of Hematology/Oncology,Department of Pediatric Oncology
[2] Boston Children’s Hospital ,Department of Pediatrics
[3] Dana-Farber Cancer Institute,Shanghai Key Laboratory of Regulatory Biology, Institute of Biomedical Sciences and School of Life Sciences
[4] Harvard Stem Cell Institute,Department of Molecular, Cell and Cancer Biology, Li Weibo Institute for Rare Diseases Research
[5] Broad Institute of Harvard and MIT,Department of Pathology
[6] Harvard Medical School,Department of Hematology
[7] East China Normal University,Gene Therapy Program
[8] University of Massachusetts Medical School,Department of Pathology
[9] Molecular Pathology Unit,Department of Pathology
[10] Center for Cancer Research,undefined
[11] and Center for Computational and Integrative Biology,undefined
[12] Massachusetts General Hospital,undefined
[13] Broad Institute of Harvard and MIT,undefined
[14] Harvard Medical School,undefined
[15] St. Jude Children’s Research Hospital,undefined
[16] Dana-Farber/Boston Children’s Cancer and Blood Disorders Center,undefined
[17] Brigham and Women’s Hospital ,undefined
[18] Harvard Medical School,undefined
[19] University College of London,undefined
[20] Great Ormond Street Institute of Child Health,undefined
[21] Faculty of Population Health Sciences,undefined
来源
Nature Medicine | 2019年 / 25卷
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摘要
Re-expression of the paralogous γ-globin genes (HBG1/2) could be a universal strategy to ameliorate the severe β-globin disorders sickle cell disease (SCD) and β-thalassemia by induction of fetal hemoglobin (HbF, α2γ2)1. Previously, we and others have shown that core sequences at the BCL11A erythroid enhancer are required for repression of HbF in adult-stage erythroid cells but are dispensable in non-erythroid cells2–6. CRISPR–Cas9-mediated gene modification has demonstrated variable efficiency, specificity, and persistence in hematopoietic stem cells (HSCs). Here, we demonstrate that Cas9:sgRNA ribonucleoprotein (RNP)-mediated cleavage within a GATA1 binding site at the +58 BCL11A erythroid enhancer results in highly penetrant disruption of this motif, reduction of BCL11A expression, and induction of fetal γ-globin. We optimize conditions for selection-free on-target editing in patient-derived HSCs as a nearly complete reaction lacking detectable genotoxicity or deleterious impact on stem cell function. HSCs preferentially undergo non-homologous compared with microhomology-mediated end joining repair. Erythroid progeny of edited engrafting SCD HSCs express therapeutic levels of HbF and resist sickling, while those from patients with β-thalassemia show restored globin chain balance. Non-homologous end joining repair-based BCL11A enhancer editing approaching complete allelic disruption in HSCs is a practicable therapeutic strategy to produce durable HbF induction.
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页码:776 / 783
页数:7
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