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May 26, 2026Applied Sciences0 citationsOpen Access

Menaquinone-7 in Atherosclerosis: Integrated Modulation of Endothelial Dysfunction, Oxidative Stress, and Vascular Inflammation

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HHHayat HassenTTTomasz TarkoMFMagdalena Franczyk‐Żarów

Key Points

  • This review aims to explore how menaquinone-7 impacts various processes related to atherosclerosis, including endothelial dysfunction and inflammation.
  • Comprehensive analysis of in vitro, animal studies, observational data, and randomized controlled trials on menaquinone-7.
  • Focus on mechanistic pathways and evidence strengths related to cardiovascular disease.
  • Highlight translational limitations and lack of human vascular evidence.
  • Menaquinone-7 promotes endothelial nitric oxide production and reduces lipid peroxidation.
  • It activates Growth Arrest-Specific Protein 6 (Gas6), enhancing physiological functions against atherosclerosis.
  • Evidence linking MK-7 to mitigating vascular inflammation and oxidative stress is emerging but requires further validation.

Abstract

Atherosclerosis is a chronic inflammatory arterial disease and the primary underlying cause of cardiovascular morbidity and mortality worldwide. Its development and progression are driven by a mechanistically interconnected triad of endothelial dysfunction, oxidative stress, and vascular inflammation. Current pharmacotherapy, primarily focused on low-density lipoprotein cholesterol (LDL-C) reduction through statin-based and adjunctive therapies, does not fully address the residual inflammatory and calcific components of atherosclerotic risk. Menaquinone-7 (MK-7), a long-chain isoform of vitamin K2 with superior bioavailability and extrahepatic tissue distribution, has emerged as a multi-target modulator of atherogenic processes. Its classical function is to serve as a cofactor for the gamma-carboxylation of vitamin K-dependent proteins (VKDPs), principally matrix Gla protein (MGP), the primary endogenous inhibitor of vascular calcification. Beyond this established pathway, a growing body of experimental evidence indicates that MK-7 may modulate endothelial nitric oxide (NO) production through carboxylation-dependent activation of Growth Arrest-Specific Protein 6 (Gas6) and suppress lipid peroxidation and ferroptosis via Ferroptosis Suppressor Protein 1 (FSP1)-mediated reduction of vitamin K hydroquinone (VKH2). In addition, it may attenuate nuclear factor kappa-B (NF-κB)-driven inflammatory gene transcription in vascular cells. Previous reviews mainly focused on how vitamin K2 influences vascular calcification and cardiovascular outcomes. However, emerging mechanistic evidence linking MK-7 to endothelial dysfunction, oxidative stress, ferroptosis, and vascular inflammation has not been comprehensively integrated. This review summarizes the current knowledge of in vitro, animal, observational, and randomized controlled trial evidence for MK-7 in the context of atherosclerosis. It particularly emphasises mechanistic pathways, the strength of evidence, and translational limitations, highlighting the lack of direct human vascular evidence in several areas.

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Cite This Study

Hassen et al. (2026) studied this question.

synapsesocial.com/papers/6a1539ccb5d9c58d83e8ccaahttps://doi.org/10.3390/app16115254
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