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Umemoto, T.

Publications and source records attributed to Umemoto, T..

2 recordsLinked to original sources

Plcl1 Regulates Hematopoietic Stem Cell Function During Aging and Stress by Modulating Calcium Dynamics

Long-term hematopoietic stem cells (HSCs) can generate all blood lineages but typically remain quiescent, becoming activated only in response to acute stress. We previously demonstrated that quiescent HSCs exhibit heterogeneity in intracellular calcium levels. However, the mechanisms underlying this heterogeneity and its physiological relevance remain unclear. Herein, we identify phospholipase C-like 1 (Plcl1), a noncatalytic protein that binds inositol 1,4,5-trisphosphate (IP3), as being selectively enriched in the most quiescent HSC subset. Loss-of-function studies revealed that Plcl1 deficiency at steady state reduced basal intracellular calcium levels and skewed the HSC compartment toward CD41 subsets while preserving overall HSC numbers and long-term reconstitution capacity. Under acute hematopoietic stress, Plcl1 loss accelerated and amplified platelet rebound and the expansion of non-canonical megakaryocyte progenitors (ncMkPs), indicating activation of the thrombopoietic bypass pathway. In aged HSCs, Plcl1 deficiency exacerbated aging-related features, including expansion of the HSC pool, accumulation of CD41 HSCs and ncMkPs, and myeloid-skewed differentiation with impaired competitive reconstitution. These changes were accompanied by diminished induction of calcium-responsive immediate-early genes. Collectively, we identified Plcl1 as an intrinsic regulator that stabilizes calcium dynamics in HSCs, thereby restraining stress- and aging-associated megakaryocytic priming and preserving stem cell function.

cell biology↗

Metabolic regulation in erythroid differentiation by systemic ketogenesis in fasted mice

Systemic ketogenesis affects murine erythroid differentiation under fasting condition, while less ketone body {beta} OHB boosts fatty acid synthesis and mevalonate pathway along with decreased levels of histone acetylation, which are beneficial for erythroid differentiation and maturation undergoing stressed erythropoiesis. AbstractErythroid terminal differentiation and maturation depends on enormous energy supply. During periods of fasting, ketone bodies from the liver are transported into circulation and utilized as crucial fuel for peripheral tissues. However, the effects of fasting or ketogenesis on erythroid behavior remain unknown. Here, we generated a mouse model with insufficient ketogenesis by conditionally knocking out the gene encoding the hepatocyte-specific ketogenic enzyme hydroxymethylglutary-CoA synthase 2 (Hmgcs2 KO). Intriguingly, erythroid maturation was enhanced with boosted fatty acid synthesis in bone marrow of hepatic Hmgcs2 KO mouse under fasting condition, suggesting that systemic ketogenesis has a profound effect on erythropoiesis. Moreover, we observed significantly activated fatty acids synthesis and mevalonate pathway along with reduced histone acetylation in immature erythrocytes under less systemic ketogenesis condition. Our findings revealed an innovative insight to erythroid differentiation, in which metabolic homeostasis and histone acetylation mediated by ketone bodies are essential factors in adaptation towards nutrient deprivation and stressed erythropoiesis.

cell biology↗