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Tanifuji, S.

Publications and source records attributed to Tanifuji, S..

2 recordsLinked to original sources

Mechanosensitive Stanniocalcin-1 Attenuates Pulmonary Arterial Hypertension by Suppressing Smooth Muscle Cell Proliferation

BackgroundIdiopathic pulmonary arterial hypertension (IPAH) is driven by progressive pulmonary vascular remodeling, particularly pulmonary arterial smooth muscle cell (PASMC) proliferation. Current combination vasodilator therapies have markedly improved outcomes; however, prognosis remains poor in subgroups such as patients with respiratory comorbidities, highlighting the need for novel therapies. Elevation of intravascular hydrostatic pressure is a hallmark of IPAH, yet its direct role in PASMC pathobiology remains largely unexplored. We developed a cyclic hydrostatic pressurization culture system to model hypertensive hemodynamic stress in vitro and identify pressure-responsive mediators. MethodsPASMCs from 4 patients with IPAH were exposed to high hydrostatic pressure (70/40 mmHg, 60 bpm). Transcriptomic profiling identified differentially expressed genes, validated by qPCR. Functional studies included piezo-type mechanosensitive ion channel component 1 (PIEZO1) modulation, recombinant human stanniocalcin-1 (rhSTC1) treatment, bromodeoxyuridine (BrdU) incorporation, and western blotting for cell-cycle regulators. In vivo, chronic hypoxia-induced pulmonary hypertension was assessed in wild-type and Stc1-/- mice by hemodynamic and histological analyses, with or without intratracheal rhSTC1 administration. ResultsRNA sequencing revealed STC1 as a robustly pressure-induced gene in IPAH PASMCs. PIEZO1 activation upregulated STC1, whereas knockdown blunted this response. Elevated STC1 expression was observed in PASMCs of IPAH lung tissues, and rhSTC1 reduced PASMC proliferation and increased p-p53, p21, and p27 expression. In the chronic hypoxia model, Stc1-/- mice exhibited higher right ventricular systolic pressure (RVSP) (43.7 {+/-} 1.3 vs. 30.6 {+/-} 0.9 mmHg) and greater pulmonary arterial medial thickness (39.1 {+/-} 2.5% vs. 26.5 {+/-} 1.3%) than wild-type mice. CD68-positive macrophages were increased in Stc1-/- mice under normoxia and further elevated with hypoxia. In wild-type and Stc1-/- PAH models, intratracheal administration of rhSTC1 markedly reduced medial thickening, CD68-positive macrophage accumulation, and RVSP in both wild-type and Stc1-/- mice. ConclusionsWe demonstrate that elevated hydrostatic pressure drives STC1 expression via PIEZO1, conferring potent anti-remodeling effects in IPAH. STC1 supplementation represents a potential therapeutic strategy that addresses an urgent medical need not fulfilled by conventional therapies. Clinical PerspectiveO_ST_ABSWhat Is New?C_ST_ABSO_LIWe established a novel hydrostatic pressurization system to recapitulate idiopathic pulmonary arterial hypertension (IPAH) hemodynamic conditions in vitro. C_LIO_LIStanniocalcin-1 (STC1) is a hydrostatic pressure-responsive gene in pulmonary arterial smooth muscle cells (PASMCs) from IPAH patients, induced via the mechanosensitive receptor piezo type mechanosensitive ion channel component 1 (PIEZO1). C_LIO_LIExogenous STC1 suppresses PASMC proliferation and attenuates pulmonary vascular remodeling in chronic hypoxia-induced PAH models. C_LI What Are the Clinical Implications?O_LISTC1 supplementation represents a potential therapeutic strategy for IPAH, acting through a non-vasodilatory mechanism. C_LIO_LISTC1 supplementation may offer benefit in patients with limited response to current vasodilator therapies or with comorbid respiratory disease. C_LIO_LITargeting mechanotransduction pathways could expand treatment options for pulmonary hypertension. C_LI

molecular biology↗

Spatiotemporal EP4-fibulin-1 expression is associated with vascular intimal hyperplasia

AimsCyclooxygenase-2- and microsomal prostaglandin E synthase-1-derived prostaglandin E2 (PGE2) are involved in vascular intimal hyperplasia (IH). Although extensive studies have revealed the roles of PGE2 receptors (EPs) in IH, spatiotemporal EP expressions and downstream targets have not been fully elucidated. In this study, we focused on EP4 and investigated its role in vascular IH. Methods and ResultsWe generated EP4 reporter mice (Ptger4-IRES-nlsLacZ) and found prominent EP4 expression in the proliferative neointima 2 weeks after femoral artery wire injury. Expression of EP4 were returned to the baseline level 4 weeks after vascular injury (VI). Injury-induced IH was diminished in vascular smooth muscle cell (VSMC)-specific EP4 heterozygous deficient mice (Ptger4fl/+;SM22-Cre) 2 and 4 weeks after VI compared to SM22-Cre, whereas injury-induced IH was exacerbated in VSMC-specific EP4-overexpressing mice (Ptger4-Tg) compared to controls (non-Tg). Systemic EP4 antagonist administration reduced VI-induced IH in wild-type mice. We investigated the role of extracellular matrix proteins, as downstream regulated targets of EP4. Stimulation of EP4 increased mRNA and protein levels of fibulin-1 (a multifunctional glycoprotein) in Ptger4-Tg VSMCs. Fibulin-1C or -1D recombinant proteins increased VSMC proliferation, whereas proliferation was decreased in fibulin-1-deficient VSMCs. We generated multiple deletion mutants of fibulin-1C and found that EGF-like modules 6-8 appear to be involved in fibulin-1-mediated proliferation. Among binding partners of fibulin-1, extracellular matrix protein 1 (ECM1) was upregulated by EP4 stimulation, and fibulin-1 and ECM1 proteins additively enhanced VSMC proliferation. Similar to EP4 expression, both fibulin-1 and ECM1 were abundantly expressed in the neointima 2 weeks after VI. Furthermore, injury-induced IH was attenuated in VSMC-specific fibulin-1 deletion mice (Fbln1fl/fl;SM22-Cre) compared to Fbln1fl/fl. ConclusionsEP4 was upregulated in proliferative IH, and EP4-induced fibulin-1 cooperated with ECM1 to promote IH through VSMC proliferation. The calcium binding EGF-like modules 6-8 of fibulin-1 are indicated to regulate cell proliferation. A Translational PerspectiveRecent advances in drug-eluting stents have significantly contributed to the reduction of vascular IH. However, the detailed mechanism underlying IH after stenting remains to be elucidated. We found that prostaglandin E2-EP4-induced fibulin-1 plays a role in IH through VSMC proliferation. It is well recognized that prostaglandin E2 plays a role in IH, but inhibition of cyclooxygenase-2 has side effects such as thrombogenesis. Because EP4 and fibulin-1 were upregulated specifically in the neointima after vascular injury, oral or local administration of an EP4 antagonist or the downregulation of fibulin-1 would be potential therapeutic strategies to restrain IH.

physiology↗