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An RPS19-edited model for Diamond-Blackfan anemia reveals TP53-dependent impairment of hematopoietic stem cell activity
Senthil Velan Bhoopalan, Jonathan S. Yen, Thiyagaraj Mayuranathan, Kalin D. Mayberry, Yu Yao, Maria Angeles Lillo Osuna, Yoonjeong Jang, Janaka S.S. Liyanage, Lionel Blanc, Steven R. Ellis, Marcin W. Wlodarski, Mitchell J. Weiss
Senthil Velan Bhoopalan, Jonathan S. Yen, Thiyagaraj Mayuranathan, Kalin D. Mayberry, Yu Yao, Maria Angeles Lillo Osuna, Yoonjeong Jang, Janaka S.S. Liyanage, Lionel Blanc, Steven R. Ellis, Marcin W. Wlodarski, Mitchell J. Weiss
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Research Article Hematology Stem cells

An RPS19-edited model for Diamond-Blackfan anemia reveals TP53-dependent impairment of hematopoietic stem cell activity

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Abstract

Diamond-Blackfan anemia (DBA) is a genetic blood disease caused by heterozygous loss-of-function mutations in ribosomal protein (RP) genes, most commonly RPS19. The signature feature of DBA is hypoplastic anemia occurring in infants, although some older patients develop multilineage cytopenias with bone marrow hypocellularity. The mechanism of anemia in DBA is not fully understood and even less is known about the pancytopenia that occurs later in life, in part because patient hematopoietic stem and progenitor cells (HSPCs) are difficult to obtain, and the current experimental models are suboptimal. We modeled DBA by editing healthy human donor CD34+ HSPCs with CRISPR/Cas9 to create RPS19 haploinsufficiency. In vitro differentiation revealed normal myelopoiesis and impaired erythropoiesis, as observed in DBA. After transplantation into immunodeficient mice, bone marrow repopulation by RPS19+/− HSPCs was profoundly reduced, indicating hematopoietic stem cell (HSC) impairment. The erythroid and HSC defects resulting from RPS19 haploinsufficiency were partially corrected by transduction with an RPS19-expressing lentiviral vector or by Cas9 disruption of TP53. Our results define a tractable, biologically relevant experimental model of DBA based on genome editing of primary human HSPCs and they identify an associated HSC defect that emulates the pan-hematopoietic defect of DBA.

Authors

Senthil Velan Bhoopalan, Jonathan S. Yen, Thiyagaraj Mayuranathan, Kalin D. Mayberry, Yu Yao, Maria Angeles Lillo Osuna, Yoonjeong Jang, Janaka S.S. Liyanage, Lionel Blanc, Steven R. Ellis, Marcin W. Wlodarski, Mitchell J. Weiss

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Figure 5

RPS19+/– HSPCs exhibit defective bone marrow repopulation after xenotransplantation.

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RPS19+/– HSPCs exhibit defective bone marrow repopulation after xenotra...
(A) Experimental scheme for xenotransplantation studies. CD34+ HSPCs (n = 2 different donors) were edited with the indicated RNPs followed by transduction with LVs encoding GFP or RPS19 plus GFP at a multiplicity of infection (MOI) of 20. A total of 4 × 105 to 5 × 105 live cells were transplanted into NSGW mice (n = 8–9 mice), which were euthanized and analyzed after 16–18 weeks. (B) Percentage of human CD45+ cells in recipient bone marrow. Data were analyzed by 1-way ANOVA test and pairwise testing was performed with Tukey’s adjustment for multiple comparisons. (C) Indel frequency in input donor CD34+ HSPCs on day 0 and in donor-derived cells in recipient mouse bone marrow at 16–18 weeks after xenotransplantation. Data were analyzed by Wilcoxon’s rank-sum test. (D) Indel frequencies in CD34+ HSPC donor-derived hematopoietic lineages purified from recipient mouse bone marrow by flow cytometry using the indicated antibodies. The frequency of human T cells in recipient bone marrow was <0.01% (not shown). Data were analyzed by unpaired, 2-tailed Student’s t test. Asterisks indicate significant differences between RPS19-edited HSPCs transduced with RPS19 plus GFP LV versus GFP LV. All charts show the mean ± SD, with each dot representing an individual mouse and each symbol representing a different CD34+ cell donor. P values were adjusted for multiple comparison by the Holm-Bonferroni method unless specified otherwise. *P < 0.05; ***P < 0.001.

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