Premature senescence impairs hematopoietic stem cell function during sickle cell disease in mice and humans

骨髓 祖细胞 造血 免疫学 癌症研究 干细胞 髓样 离体 生物 造血干细胞 骨髓衰竭 川地34 细胞疗法 血细胞 医学 衰老 移植 细胞 CXCR4型 白血病 造血干细胞移植 细胞周期 体内 遗传增强 Fms样酪氨酸激酶3 内皮干细胞 髓系白血病
作者
Aditya Barve,Preeti Dabas,Adam Cornwell,Pramika Sriram,Oleg V. Kopyov,Mattieu Zhai,Emilia Kooienga,Zakiya Kelley,James Johnson,Jacquelyn Myers,Esther A. Obeng,Guolian Kang,Yunusa Olufadi,Terri L Cain,Lindsay J. Talbot,David Spence,Mauricio Cortes,Samuel A. Miller,Dirk Loeffler,Akshay Sharma
出处
期刊:Science Translational Medicine [American Association for the Advancement of Science]
卷期号:18 (859)
标识
DOI:10.1126/scitranslmed.adv0628
摘要

Sickle cell disease (SCD) is a blood disorder affecting millions worldwide. Emerging evidence reveals that SCD pathophysiology increases the risk of myeloid malignancies and hematopoietic stem cell (HSC) dysfunction, likely because of chronic stress on bone marrow. To investigate this further, we interrogated bone marrow hematopoietic stem and progenitor cells (HSPCs) from mice and individuals with SCD and observed molecular signatures of chronic cellular stress including oxidative stress, DNA damage, and hallmarks of senescence. Consistent with these findings, SCD HSPCs displayed transcriptomic dysregulation of senescence-associated molecular programs and diminished mitogen response with prolonged cell cycle kinetics during time-lapse live cell imaging. SCD mice displayed a marked loss of immunophenotypic bone marrow HSPCs by flow cytometry and functional blood repopulating HSPCs in transplantation studies, whereas human SCD bone marrow HSPCs exhibited poor ex vivo hematopoietic colony-forming ability, and these phenotypes were reversed after senescence-targeting therapy with either ABT-263 (navitoclax) or the combination of dasatinib and quercetin. Thus, treatment with senescence-targeting therapy improves bone marrow HSPC function in vivo in mice and ex vivo in cells from individuals with SCD and could represent a possible strategy to improve HSPC health, promote manufacture of high-quality bespoke clinical products, and potentially enhance the safety of potentially curative gene therapies using autologous HSPCs from individuals with SCD.

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