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Assessment of Cellular Bioenergetics in Mouse Hematopoietic Stem and Primitive Progenitor Cells using the Extracellular Flux Analyzer
Published on: September 24, 2021
Mitochondria: the key hub for hematopoietic stem cell homeostasis maintenance and fate determination
Ran Xu1,2, Yaowei Meng3, Anyu Xu2
1School of Life Science and Technology, Harbin Institute of Technology, Harbin, 150080, China.
Hematopoietic stem cells (HSCs) constitute the pivotal cellular subset sustaining long-term hematopoietic homeostasis, characterized by robust self‑renewal and multilineage differentiation potential. Under physiological conditions, HSCs undergo stepwise differentiation through rigorously controlled regulatory networks to produce a full repertoire of mature blood cells, fulfilling basal physiological demands. Upon exposure to stress or pathological insults (e.g., bone marrow niche dysregulation), HSCs rapidly activate emergency regenerative programs to reconstitute hematopoietic function and restore systemic homeostasis. As intracellular "powerhouses" and central hubs of metabolic regulation, mitochondria exert profound regulatory effects on HSCs fate determination. The dynamic balance of mitochondrial metabolism not only furnishes HSCs with sufficient bioenergy but also generates critical metabolic intermediates; meanwhile, the fine-tuning of oxidative stress and autophagic machinery ensures mitochondrial network integrity. These biological processes are intricately intertwined, forming a complex regulatory network that profoundly modulates HSCs self-renewal, lineage commitment, and long-term hematopoietic reconstitution potential. This review systematically dissects the multi-dimensional regulatory mechanisms by which mitochondria govern HSCs, elaborates on the synergistic interactions and antagonistic effects among distinct components of the regulatory circuitry, and defines the pivotal role of mitochondria in sustaining HSCs homeostasis and orchestrating their repair responses to cellular damage. This work establishes a novel theoretical framework for devising mitochondrial-targeted interventions to sustain metabolic homeostasis in HSCs. Furthermore, it lays a solid scientific foundation for the treatment of hematological diseases and the development of precision therapeutic strategies, offering new insights into the clinical management of hematopoietic disorders.
Hematopoietic stem cells (HSCs) constitute the pivotal cellular subset sustaining long-term hematopoietic homeostasis, characterized by robust self‑renewal and multilineage differentiation potential. Under physiological conditions, HSCs undergo stepwise differentiation through rigorously controlled regulatory networks to produce a full repertoire of mature blood cells, fulfilling basal physiological demands. Upon exposure to stress or pathological insults (e.g., bone marrow niche dysregulation), HSCs rapidly activate emergency regenerative programs to reconstitute hematopoietic function and restore systemic homeostasis. As intracellular "powerhouses" and central hubs of metabolic regulation, mitochondria exert profound regulatory effects on HSCs fate determination. The dynamic balance of mitochondrial metabolism not only furnishes HSCs with sufficient bioenergy but also generates critical metabolic intermediates; meanwhile, the fine-tuning of oxidative stress and autophagic machinery ensures mitochondrial network integrity. These biological processes are intricately intertwined, forming a complex regulatory network that profoundly modulates HSCs self-renewal, lineage commitment, and long-term hematopoietic reconstitution potential. This review systematically dissects the multi-dimensional regulatory mechanisms by which mitochondria govern HSCs, elaborates on the synergistic interactions and antagonistic effects among distinct components of the regulatory circuitry, and defines the pivotal role of mitochondria in sustaining HSCs homeostasis and orchestrating their repair responses to cellular damage. This work establishes a novel theoretical framework for devising mitochondrial-targeted interventions to sustain metabolic homeostasis in HSCs. Furthermore, it lays a solid scientific foundation for the treatment of hematological diseases and the development of precision therapeutic strategies, offering new insights into the clinical management of hematopoietic disorders.
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