Cardiovascular Translational Research, Navarrabiomed (Miguel Servet Foundation), Complejo Hospitalario de Navarra (CHN), Universidad Pública de Navarra (UPNA), IdiSNA. Irunlarrea 3, 31008 Pamplona, Spain.
Int J Mol Sci. 2021 Feb 25;22(5):2310. doi: 10.3390/ijms22052310.
Mitral valve disease (MVD) is a frequent cause of heart failure and death worldwide, but its etiopathogenesis is not fully understood. Interleukin (IL)-33 regulates inflammation and thrombosis in the vascular endothelium and may play a role in the atherosclerotic process, but its role in mitral valve has not been investigated. We aim to explore IL-33 as a possible inductor of myxomatous degeneration in human mitral valves. We enrolled 103 patients suffering from severe mitral regurgitation due to myxomatous degeneration undergoing mitral valve replacement. Immunohistochemistry of the resected leaflets showed IL-33 and ST2 expression in both valve interstitial cells (VICs) and valve endothelial cells (VECs). Positive correlations were found between the levels of IL-33 and molecules implicated in the development of myxomatous MVD, such as proteoglycans, extracellular matrix remodeling enzymes (matrix metalloproteinases and their tissue inhibitors), inflammatory and fibrotic markers. Stimulation of single cell cultures of VICs and VECs with recombinant human IL-33 induced the expression of activated VIC markers, endothelial-mesenchymal transition of VECs, proteoglycan synthesis, inflammatory molecules and extracellular matrix turnover. Our findings suggest that the IL-33/ST2 system may be involved in the development of myxomatous MVD by enhancing extracellular matrix remodeling.
二尖瓣疾病(MVD)是全球范围内导致心力衰竭和死亡的常见原因,但其病因发病机制尚未完全阐明。白细胞介素(IL)-33 可调节血管内皮的炎症和血栓形成,并且可能在动脉粥样硬化过程中发挥作用,但尚未研究其在二尖瓣中的作用。我们旨在探索 IL-33 是否可能作为人类二尖瓣粘液样变性的诱导物。我们招募了 103 名因粘液样变性导致严重二尖瓣反流而接受二尖瓣置换术的患者。对切除的瓣叶进行免疫组织化学染色显示,IL-33 和 ST2 在瓣膜间质细胞(VIC)和瓣膜内皮细胞(VEC)中均有表达。IL-33 水平与参与粘液样 MVD 发展的分子之间存在正相关,如糖胺聚糖、细胞外基质重塑酶(基质金属蛋白酶及其组织抑制剂)、炎症和纤维化标志物。用重组人 IL-33 刺激 VIC 和 VEC 的单细胞培养物,诱导活化的 VIC 标志物、VEC 的内皮-间充质转化、糖胺聚糖合成、炎症分子和细胞外基质周转。我们的研究结果表明,IL-33/ST2 系统可能通过增强细胞外基质重塑参与粘液样 MVD 的发展。