Aortic stenosis
Lp(a) triggers a cascade from valve damage to calcification via autotaxin and NF-kB, a review of aortic valve stenosis mechanisms (Biomolecules 2019)
Original title: Lipoprotein(a) as Orchestrator of Calcific Aortic Valve Stenosis
This review by Schnitzler, Ali, Groenen, Kaiser and Kroon (Amsterdam UMC) details how lipoprotein(a) [Lp(a)] drives calcific aortic valve stenosis (AVS), the most prevalent valvular heart disease in the Western world, whose untreated yearly mortality rises to 25%, with no effective pharmacological treatment beyond surgical or transcatheter valve replacement. Multiple studies indicate Lp(a) is a likely causal, independent risk factor for AVS, and patients with elevated Lp(a) face a higher risk of hospitalisation or mortality from AVS. Mechanistically, Lp(a) enters damaged valve tissue, where autotaxin converts lysophosphatidylcholine to lysophosphatidic acid, which activates a nuclear factor-kB cascade raising interleukin 6, bone morphogenetic protein 2 and RUNX2 transcripts, driving calcification through alkaline phosphatase production and calcium deposition. The review also outlines emerging therapies that could target this pathway.
Original abstract
Aortic valve stenosis (AVS) is the most prevalent valvular heart disease in the Western World with exponentially increased incidence with age. If left untreated, the yearly mortality rates increase up to 25%. Currently, no effective pharmacological interventions have been established to treat or prevent AVS. The only treatment modality so far is surgical or transcatheter aortic valve replacement (AVR). Lipoprotein(a) [Lp(a)] has been implicated as a pivotal player in the pathophysiology of calcification of the valves. Patients with elevated levels of Lp(a) have a higher risk of hospitalization or mortality due to the presence of AVS. Multiple studies indicated Lp(a) as a likely causal and independent risk factor for AVS. This review discusses the most important findings and mechanisms related to Lp(a) and AVS in detail. During the progression of AVS, Lp(a) enters the aortic valve tissue at damaged sites of the valves. Subsequently, autotaxin converts lysophosphatidylcholine in lysophosphatidic acid (LysoPA) which in turn acts as a ligand for the LysoPA receptor. This triggers a nuclear factor-κB cascade leading to increased transcripts of interleukin 6, bone morphogenetic protein 2, and runt-related transcription factor 2. This progresses to the actual calcification of the valves through production of alkaline phosphatase and calcium depositions. Furthermore, this review briefly mentions potentially interesting therapies that may play a role in the treatment or prevention of AVS in the near future.
aortic stenosisDutch researchmechanisms
Summary written by lp-a.org from the published abstract; figures as published. Page updated 18 August 2026. Methods.