Fibrous Caps in Atherosclerosis Form by Notch-Dependent Mechanisms Common to Arterial Media Development.

Atheromatous fibrous caps are produced by smooth muscle cells (SMCs) that are recruited to the subendothelial space. We tested whether the recruitment mechanisms are the same as in embryonic artery development, which relies prominently on Notch signaling to form the subendothelial medial SMC layers....

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Detalles Bibliográficos
Autores: Martos-Rodríguez, Carlos J, Albarrán-Juárez, Julián, Morales-Cano, Daniel, Caballero, Ainoa, MacGrogan, Donal, de la Pompa, Jose Luis, Carramolino, Laura, Bentzon, Jacob F
Tipo de recurso: artículo
Fecha de publicación:2021
País:España
Institución:Instituto de Salud Carlos III (ISCIII)
Repositorio:Repisalud
Idioma:inglés
OAI Identifier:oai:repisalud.isciii.es:20.500.12105/15379
Acceso en línea:http://hdl.handle.net/20.500.12105/15379
Access Level:acceso abierto
Palabra clave:Plaque, Atherosclerotic
Actins
Animals
Arteries
Atherosclerosis
Cell Lineage
Cells, Cultured
Disease Progression
Fibrosis
Humans
Immunoglobulin J Recombination Signal Sequence-Binding Protein
Jagged-1 Protein
Male
Mice, Inbred C57BL
Mice, Knockout
Muscle, Smooth, Vascular
Myocytes, Smooth Muscle
Phenotype
Rats
Receptors, Notch
Signal Transduction
Tunica Media
Descripción
Sumario:Atheromatous fibrous caps are produced by smooth muscle cells (SMCs) that are recruited to the subendothelial space. We tested whether the recruitment mechanisms are the same as in embryonic artery development, which relies prominently on Notch signaling to form the subendothelial medial SMC layers. Notch elements were expressed in regions of fibrous cap in human and mouse plaques. To assess the causal role of Notch signaling in cap formation, we studied atherosclerosis in mice where the Notch pathway was inactivated in SMCs by conditional knockout of the essential effector transcription factor RBPJ (recombination signal-binding protein for immunoglobulin kappa J region). The recruitment of cap SMCs was significantly reduced without major effects on plaque size. Lineage tracing revealed the accumulation of SMC-derived plaque cells in the cap region was unaltered but that Notch-defective cells failed to re-acquire the SMC phenotype in the cap. Conversely, to analyze whether the loss of Notch signaling is required for SMC-derived cells to accumulate in atherogenesis, we studied atherosclerosis in mice with constitutive activation of Notch signaling in SMCs achieved by conditional expression of the Notch intracellular domain. Forced Notch signaling inhibited the ability of medial SMCs to contribute to plaque cells, including both cap SMCs and osteochondrogenic cells, and significantly reduced atherosclerosis development. Sequential loss and gain of Notch signaling is needed to build the cap SMC population. The shared mechanisms with embryonic arterial media assembly suggest that the cap forms as a neo-media that restores the connection between endothelium and subendothelial SMCs, transiently disrupted in early atherogenesis.