TY - JOUR
T1 - Functional and molecular profiling of hematopoietic stem cells during regeneration
AU - Rydström, Anna
AU - Grahn, Tan H.M.
AU - Niroula, Abhishek
AU - Mansell, Els
AU - van der Garde, Mark
AU - Pertesi, Maroulio
AU - Subramaniam, Agatheeswaran
AU - Soneji, Shamit
AU - Zubarev, Roman
AU - Enver, Tariq
AU - Nilsson, Björn
AU - Miharada, Kenichi
AU - Larsson, Jonas
AU - Karlsson, Stefan
N1 - Funding Information:
This work was funded by Knut och Alice Wallenbergs Stiftelse . Additionally, the Swedish Research Council, Cancerfonden , and the Swedish Pediatric Cancer Society funded the study with grants to Dr. SK. This work was supported by Core-to-Core Program Advanced Research Networks “Integrative approach for normal and leukemic stem cells” from the Japan Society for the Promotion of Science of Japan. We thank Alexandra Rundberg-Nilsson for valuable input on the manuscript.
Publisher Copyright:
© 2023 ISEH -- Society for Hematology and Stem Cells
PY - 2023/11
Y1 - 2023/11
N2 - Hematopoietic stem cells (HSCs) enable hematopoietic stem cell transplantation (HCT) through their ability to replenish the entire blood system. Proliferation of HSCs is linked to decreased reconstitution potential, and a precise regulation of actively dividing HSCs is thus essential to ensure long-term functionality. This regulation becomes important in the transplantation setting where HSCs undergo proliferation followed by a gradual transition to quiescence and homeostasis. Although mouse HSCs have been well studied under homeostatic conditions, the mechanisms regulating HSC activation under stress remain unclear. Here, we analyzed the different phases of regeneration after transplantation. We isolated bone marrow from mice at 8 time points after transplantation and examined the reconstitution dynamics and transcriptional profiles of stem and progenitor populations. We found that regenerating HSCs initially produced rapidly expanding progenitors and displayed distinct changes in fatty acid metabolism and glycolysis. Moreover, we observed molecular changes in cell cycle, MYC and mTOR signaling in both HSCs, and progenitor subsets. We used a decay rate model to fit the temporal transcription profiles of regenerating HSCs and identified genes with progressively decreased or increased expression after transplantation. These genes overlapped to a large extent with published gene sets associated with key aspects of HSC function, demonstrating the potential of this data set as a resource for identification of novel HSC regulators. Taken together, our study provides a detailed functional and molecular characterization of HSCs at different phases of regeneration and identifies a gene set associated with the transition from proliferation to quiescence.
AB - Hematopoietic stem cells (HSCs) enable hematopoietic stem cell transplantation (HCT) through their ability to replenish the entire blood system. Proliferation of HSCs is linked to decreased reconstitution potential, and a precise regulation of actively dividing HSCs is thus essential to ensure long-term functionality. This regulation becomes important in the transplantation setting where HSCs undergo proliferation followed by a gradual transition to quiescence and homeostasis. Although mouse HSCs have been well studied under homeostatic conditions, the mechanisms regulating HSC activation under stress remain unclear. Here, we analyzed the different phases of regeneration after transplantation. We isolated bone marrow from mice at 8 time points after transplantation and examined the reconstitution dynamics and transcriptional profiles of stem and progenitor populations. We found that regenerating HSCs initially produced rapidly expanding progenitors and displayed distinct changes in fatty acid metabolism and glycolysis. Moreover, we observed molecular changes in cell cycle, MYC and mTOR signaling in both HSCs, and progenitor subsets. We used a decay rate model to fit the temporal transcription profiles of regenerating HSCs and identified genes with progressively decreased or increased expression after transplantation. These genes overlapped to a large extent with published gene sets associated with key aspects of HSC function, demonstrating the potential of this data set as a resource for identification of novel HSC regulators. Taken together, our study provides a detailed functional and molecular characterization of HSCs at different phases of regeneration and identifies a gene set associated with the transition from proliferation to quiescence.
U2 - 10.1016/j.exphem.2023.08.010
DO - 10.1016/j.exphem.2023.08.010
M3 - Article
C2 - 37666355
AN - SCOPUS:85172069729
SN - 0301-472X
VL - 127
SP - 40
EP - 51
JO - Experimental Hematology
JF - Experimental Hematology
ER -