Oxidized Phospholipids Promote NETosis and Arterial Thrombosis in LNK(SH2B3) Deficiency

Huijuan Dou1, Andriana Kotini2, Wenli Liu1

  • 1Molecular Medicine, Columbia University Medical Center, New York (H.D., W.L., T.F., K.E.-U., T.X., S.A., M.Y., B.H., N.W., A.R.T.).

Circulation
|November 30, 2021
PubMed
Abstract

Insights

Hematopoietic Lnk deficiency promotes neutrophil extracellular trap (NET) formation and arterial thrombosis. Therapies targeting oxidized phospholipids (OxPL) may benefit coronary artery disease patients with specific genetic profiles.

Area of Science:

  • Cardiovascular Biology
  • Immunology
  • Hematology

Background:

  • LNK/SH2B3 protein regulates Janus kinase/signal transducer and activator of transcription (JAK/STAT) signaling.
  • A common LNK polymorphism (R262W) is linked to neutrophilia, thrombocytosis, and coronary artery disease.
  • LNK deficiency in mice leads to platelet-neutrophil aggregates, accelerated atherosclerosis, and thrombosis, suggesting a role for neutrophil extracellular traps (NETs).

Purpose of the Study:

  • To investigate the role of NETs in atherosclerosis and thrombosis in mice with hematopoietic Lnk deficiency.
  • To explore the mechanism by which LNK deficiency promotes NETosis, involving oxidized phospholipids (OxPL).
  • To assess the relevance of these findings in human subjects with specific genetic mutations.

Main Methods:

  • Breeding mice with combined deficiency of Lnk and PAD4 (an enzyme essential for NETosis).
  • Bone marrow transplantation into Ldlr-/- mice to evaluate atherothrombosis.
  • Utilizing human induced pluripotent stem cell-derived cells and UK Biobank data to confirm human relevance and clinical associations.

Main Results:

  • Lnk-deficient mice exhibited accelerated thrombosis and NETosis, which was reversed by PAD4 deficiency.
  • Lnk-deficient platelets and neutrophils showed increased interaction and NETosis, mediated by oxidized phospholipids (OxPL).
  • E06-scFv, an antibody fragment targeting OxPL, reversed NETosis, atherosclerosis, and thrombosis in Lnk-deficient mice. Human studies confirmed increased NETosis with LNK(TT) genotype and linked LNK R262W allele with increased coronary artery disease risk in JAK2VF mutation carriers.

Conclusions:

  • Hematopoietic Lnk deficiency promotes NETosis and arterial thrombosis via an OxPL-dependent pathway.
  • Reduced LNK function due to the R262W variant promotes NETosis and elevates coronary artery disease risk in individuals with JAK2VF mutations.
  • Targeting OxPL may offer therapeutic benefits for coronary artery disease in specific genetically defined populations.

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