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Yahagi, A.

Publications and source records attributed to Yahagi, A..

2 recordsLinked to original sources

Inflammatory restraint and membrane lipid integrity protect hematopoietic stem cells under stress

Life-long production of blood requires the preservation of hematopoietic stem cell (HSCs) regenerative capacity during inflammation. The cytokine, Thrombopoietin (THPO), is essential for HSC maintenance yet its role during inflammatory stress remains incompletely understood. Long-term repopulating potential was rapidly depleted in THPO-deficient HSCs upon poly(I:C) administration through inflammatory pyroptosis. Transcriptomic and chromatin accessibility analyses revealed constitutive interferon (IFN) pathway activation in THPO-deficient HSCs, characterized by enhanced STAT1 signaling, increased accessibility of STAT and IRF motifs, and elevated expression of IFN-stimulated genes. Lipidomic profiling further identified selective shifts in sphingomyelin (SM) species and enrichment of features associated with increased bilayer rigidity. THPO-deficient HSCs displayed elevated membrane SM incorporation, impaired membrane fluidity and altered membrane ultrastructure. Genetic ablation of Stat1 normalized membrane lipid abnormalities and reduced pyroptotic activation and restored HSC survival and regenerative function under inflammatory stress. Together, these findings identify a STAT1 and SM metabolism as critical THPO downstream to protect HSCs from inflammatory pyroptosis. Our results reveal membrane lipid homeostasis as a fundamental mechanism through which cytokine signaling safeguards HSC function during stress.

cell biology↗

The Nkx2.3-Nr5a1 gene cascade plays a crucial role in spleen-specific vascular architecture and marginal zone formation

NR5A1 is a nuclear receptor and master regulator of steroidogenic tissue development and steroid hormone biosynthesis in the adrenal glands and gonads. Although NR5A1 is expressed in splenic vascular endothelial cells, its function in the adult spleen remains unclear. Using single-cell transcriptomics in mice, we show that NR5A1-positive endothelial cells are heterogeneous and exhibit distinct phenotypes according to their localization in the splenic sinus or marginal sinus. To assess NR5A1 function, we generated a spleen-specific Nr5a1 enhancer deletion model. Enhancer loss resulted in reduced spleen size and ablation of the marginal zone and marginal sinus. In addition, 21-hydroxylase activity in splenic sinusoidal endothelial cells was reduced, particularly in females, leading to decreased levels of adrenocortical steroids in the spleen. Enhancer deletion also induced ectopic lymphatic-like and high endothelial venule-like vasculature similar to those observed in Nkx2.3-deficient mice. Consistently, mutation of the NKX2.3-binding motif within the enhancer abolished NR5A1 expression. Together, these findings identify an Nkx2.3[->]Nr5a1 regulatory axis essential for spleen-specific endothelial cell differentiation and splenic architecture required for blood filtration and marginal zone formation.

developmental biology↗