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Biology subjects

Dabas, P.

Publications and source records attributed to Dabas, P..

2 recordsLinked to original sources

Elevated endocytic trafficking mediated by GPRASP2 maintains HSC fidelity.

Endolysosomal trafficking supports cellular homeostasis through coordinated regulation of extrinsic signaling inputs. Hematopoietic stem cell (HSC) function requires a tightly regulated balance between quiescence for long-term preservation and rapid activation for blood production. Although lysosomal regulation of metabolism and quiescence has been linked to stem cell maintenance, the contribution of endocytic routing to lysosomal function remains incompletely understood. Here, we show that quiescent HSCs rely on elevated endocytosis to maintain self-renewal. This activity is mediated in part by GPRASP2, a post-endosomal sorting protein. HSCs enriched in GPRASP2 are functionally dormant yet molecularly primed for activation however, in response to proliferative cues, dormant HSCs exhibit reduced signaling and proliferation. Disruption of GPRASP2-mediated endocytosis induces rapid proliferation and increased expression of signaling constituents, consistent with a model in which elevated endocytosis attenuates signaling through receptor internalization. Thus, we identify endocytosis as a mechanism by which HSCs limit functional exhaustion arising from chronic activation.

cell biology↗

Senolytics Restore Hematopoietic Stem Cells Function in Sickle Cell Disease

Sickle Cell Disease (SCD) is a blood disorder affecting millions worldwide. Emerging evidence reveals that SCD pathophysiology increases risk of myeloid malignancies and hematopoietic stem cell (HSC) dysfunction, possibly due to pathological stress on bone marrow. To investigate this further, we interrogated mice and individuals with SCD and observed extended cell cycle times, oxidative stress, DNA damage, senescence, and dysregulation of molecular programs associated with these processes in bone marrow hematopoietic stem and progenitor cells (HSPCs). Human SCD HSPCs displayed poor hematopoietic potential ex vivo. SCD mice displayed a dramatic loss of transplantable bone marrow HSPCs, which was reversed upon treatment of SCD mice with the senolytic agent, ABT-263 (navitoclax). Thus, senolytics restore bone marrow function during SCD in mice and represent a novel strategy to improve bone marrow health in individuals with SCD and improve the safety of potentially curative gene therapies that utilize autologous HSPCs from individuals with SCD.

cell biology↗