Treatment with senescence-targeting therapy improves BM hematopoietic stem and progenitor cells 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 utilizing autologous HSPCs from individuals with SCD.
Abstract
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 due to chronic stress on bone marrow (BM). To investigate this further, we interrogated BM 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 showed diminished mitogen response with prolonged cell cycle kinetics during time-lapse live cell imaging. SCD mice displayed a marked loss of immunophenotypic BM HSPCs by flow cytometry and functional blood repopulating HSPCs in transplantation studies, whereas human SCD BM HSPCs exhibited poor ex vivo hematopoietic colony forming ability, and these phenotypes were reversed following senescence-targeting therapy with either ABT-263 (Navitoclax) or the combination of dasatinib and quercetin (DQ). Thus, treatment with senescence-targeting therapy improves BM 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 utilizing autologous HSPCs from individuals with SCD.
Progressive aging of bone marrow hematopoietic stem cells (HSCs) underlies clonal hematopoiesis and age-associated hematologic disorders. Defining early molecular events driving HSC functional decline is essential for rejuvenation strategies. Here, we identify P-selectin (Selp) as a surface marker that stratifies HSCs...
It is demonstrated that SLF2 and SMC5 dysfunction drives premature HSC aging, bone marrow failure, and predisposition to MDS, revealing Atelis Syndrome as a previously unrecognized IBMFS.
Sho Shibata, K. Chonabayashi, Hirofumi Nakamura et al.· Leukemia· 1 citation
iPSC-derived HSPCs from patients with KD display altered immune-inflammatory transcriptional profiles and suppressed B-cell developmental signatures at the transcriptomic level, which suggest that early hematopoietic immune dysregulation may contribute to KD pathogenesis.
Lian-Ni Mei, Lei Gao, Rui-Zhi Zhang et al.· Frontiers in Pediatrics· 0 citations
Ex vivo expansion of human hematopoietic stem cells (HSCs) holds promise for overcoming their limited availability, a major barrier to broader clinical application. Although recent advances in culture systems can increase HSC numbers, these conditions frequently impair self-renewal and induce myeloid bias, and the unde...
Xinjian Mao, Ning Zhang, Xi C. He et al.· Blood· 0 citations
BACKGROUND
aging is a multifactorial process characterized by progressive loss of tissue homeostasis and regenerative capacity, with haematopoiesis being profoundly affected. Age-associated changes in hematopoietic stem cells (HSCs) include increased frequency but reduced function, impaired self-renewal, and myeloid bi...
J. A. Bejarano-García, Melanie Nufer, Rocío Caracuel et al.· Transplantation and Cellular...· 0 citations
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