Aortic stenosis
Oxidised phospholipids and autotaxin link Lp(a) to aortic valve calcification, mechanistic review (Int J Mol Sci 2026)
Original title: Role of Lipoprotein(a) in Aortic Valve Calcification: Inflammatory and Oxidative Mechanisms Involved
Review of the molecular and cellular mechanisms linking lipoprotein(a) to calcific aortic valve disease (CAVD). Lp(a) carries oxidised phospholipids, lysophosphatidylcholine and autotaxin into the valvular matrix, promoting endothelial activation, monocytic-lineage cell recruitment and release of proinflammatory mediators. The autotaxin-lysophosphatidic acid axis and oxidised phospholipids drive redox-dependent pathways that push valvular interstitial cells toward myofibroblastic and osteogenic phenotypes, culminating in procalcifying extracellular vesicle release and hydroxyapatite nucleation. Genetic and imaging evidence links elevated Lp(a) to microcalcifying activity and faster haemodynamic progression, but although anti-Lp(a) therapies substantially lower plasma Lp(a), their effect on valvular outcomes has not yet been shown.
Original abstract
Elevated plasma lipoprotein(a) [Lp(a)] levels represent a predominantly genetically determined risk factor for atherosclerotic cardiovascular disease and calcific aortic valve disease (CAVD). Mechanistically, Lp(a) transports oxidized phospholipids, lysophosphatidylcholine, and autotaxin, components capable of promoting inflammation, oxidative stress, and valvular fibrocalcific remodeling. This review synthesizes the molecular, cellular, and clinical evidence linking Lp(a) to CAVD progression. Retention of Lp(a) and other apolipoprotein B-containing lipoproteins in the valvular matrix promotes endothelial activation, recruitment of cells of the monocytic lineage, and the release of proinflammatory mediators. Oxidized phospholipids and the autotaxin-lysophosphatidic acid axis activate redox-dependent pathways and promote the transition of valvular interstitial cells toward myofibroblastic and/or osteogenic phenotypes. These processes converge in alterations in cholesterol metabolism, the release of procalcifying extracellular vesicles, and hydroxyapatite nucleation. Genetic and imaging evidence supports an association between elevated Lp(a), microcalcifying activity, and accelerated hemodynamic progression. Although anti-Lp(a) therapies substantially reduce plasma Lp(a) concentrations, their effect on valvular outcomes has not yet been demonstrated.
aortic stenosisinflammationmechanisms
Summary written by lp-a.org from the published abstract; figures as published. Page updated 17 August 2026. Methods.