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Imidazole propionate is a driver and therapeutic target in atherosclerosis

咪唑 丙酸盐 医学 化学 生物化学
作者
Annalaura Mastrangelo,Iñaki Robles‐Vera,Diego Mañanes,Miguel Á. Galán,Marcos Femenía-Muiña,Ana Redondo‐Urzainqui,Rafael Barrero-Rodríguez,Eleftheria Papaioannou,J. Amores,Ana Devesa,Manuel Lobo-González,Alba Carreras,Katharina R. Beck,Sophie Ivarsson,Anders Gummesson,Georgios Georgiopoulos,Manuel Rodrigo-Tapias,Sarai Martínez-Cano,Ivan Fernández-López,Vanessa Núñez
出处
期刊:Nature [Nature Portfolio]
卷期号:645 (8079): 254-261 被引量:49
标识
DOI:10.1038/s41586-025-09263-w
摘要

Atherosclerosis is the main underlying cause of cardiovascular diseases. Its prevention is based on the detection and treatment of traditional cardiovascular risk factors1. However, individuals at risk for early vascular disease often remain unidentified2. Recent research has identified new molecules in the pathophysiology of atherosclerosis3, highlighting the need for alternative disease biomarkers and therapeutic targets to improve early diagnosis and therapy efficacy. Here, we observed that imidazole propionate (ImP), produced by microorganisms, is associated with the extent of atherosclerosis in mice and in two independent human cohorts. Furthermore, ImP administration to atherosclerosis-prone mice fed with chow diet was sufficient to induce atherosclerosis without altering the lipid profile, and was linked to activation of both systemic and local innate and adaptive immunity and inflammation. Specifically, we found that ImP caused atherosclerosis through the imidazoline-1 receptor (I1R, also known as nischarin) in myeloid cells. Blocking this ImP–I1R axis inhibited the development of atherosclerosis induced by ImP or high-cholesterol diet in mice. Identification of the strong association of ImP with active atherosclerosis and the contribution of the ImP–I1R axis to disease progression opens new avenues for improving the early diagnosis and personalized therapy of atherosclerosis. Imidazole propionate produced by gut microbiota is associated with atherosclerosis in mouse models and in humans, and causes the development of atherosclerosis through activation of the imidazoline-1 receptor in myeloid cells.
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