Malondialdehyde-specific natural IgM inhibit NETosis triggered by culprit site–derived extracellular vesicles from myocardial infarction patients

Author:

Ondracek Anna S1ORCID,Afonyushkin Taras2,Aszlan Adrienne1ORCID,Taqi Soreen2,Koller Thomas2,Artner Tyler1ORCID,Porsch Florentina2ORCID,Resch Ulrike34ORCID,Sharma Smriti1ORCID,Scherz Thomas5,Spittler Andreas6,Haertinger Maximilian7,Hofbauer Thomas M1ORCID,Ozsvar-Kozma Maria2,Seidl Veronika1,Beitzke Dietrich8ORCID,Krueger Marcus4ORCID,Testori Christoph9ORCID,Lang Irene M1ORCID,Binder Christoph J2ORCID

Affiliation:

1. Department of Internal Medicine II, Cardiology, Medical University of Vienna , Waehringer Guertel 18-20, Leitstelle 6L, 1090 Vienna , Austria

2. Department of Laboratory Medicine, Medical University of Vienna , Waehringer Guertel 18-20, Leitstelle 5H, 1090 Vienna , Austria

3. Department of Vascular Biology and Thrombosis Research, Center of Physiology and Pharmacology, Medical University of Vienna , Vienna , Austria

4. Institute for Genetics and Cologne Excellence Cluster for Aging and Aging-Associated Diseases (CECAD), University of Cologne , Cologne , Germany

5. Department of Dermatology, Landesklinikum Wiener Neustadt , Wiener Neustadt , Austria

6. Department of Surgery and Core Facility Flow Cytometry, Medical University of Vienna , Vienna , Austria

7. Department of Plastic, Reconstructive and Aesthetic Surgery, Medical University of Vienna , Vienna , Austria

8. Department of Biomedical Imaging and Image-guided therapy, Medical University of Vienna , Vienna , Austria

9. Department of Emergency Medicine, Medical University of Vienna , Vienna , Austria

Abstract

Abstract Background and Aims Neutrophil extracellular traps (NETs) trigger atherothrombosis during acute myocardial infarction (AMI), but mechanisms of induction remain unclear. Levels of extracellular vesicles (EV) carrying oxidation-specific epitopes (OSE), which are targeted by specific natural immunoglobulin M (IgM), are increased at the culprit site in AMI. This study investigated EV as inducers of NETosis and assessed the inhibitory effect of natural anti-OSE–IgM in this process. Methods Blood from the culprit and peripheral site of ST-segment elevation myocardial infarction (STEMI) patients (n = 28) was collected, and myocardial function assessed by cardiac magnetic resonance imaging (cMRI) 4 ± 2 days and 195 ± 15 days post-AMI. Extracellular vesicles were isolated from patient plasma and cell culture supernatants for neutrophil stimulation in vitro and in vivo, in the presence of a malondialdehyde (MDA)-specific IgM or an isotype control. NETosis and neutrophil functions were assessed via enzyme-linked immunosorbent assay and fluorescence microscopy. Pharmacological inhibitors were used to map signalling pathways. Neutrophil extracellular trap markers and anti-OSE–IgM were measured by ELISA. Results CD45+ MDA+ EV and NET markers were elevated at the culprit site. Extracellular vesicles induced neutrophil activation and NET formation via TLR4 and PAD4, and mice injected with EV showed increased NETosis. Malondialdehyde-specific IgM levels were inversely associated with citH3 in STEMI patient blood. An MDA-specific IgM inhibited EV-induced NET release in vitro and in vivo. CD45+ MDA+ EV concentrations inversely correlated with left ventricular ejection fraction post-AMI. Conclusions Culprit site–derived EV induce NETosis, while MDA-specific natural IgM inhibit this effect, potentially impacting outcome after AMI.

Funder

Vienna Science and Technology Fund

Austrian Science Fund

Leducq Foundation

BMBF

Publisher

Oxford University Press (OUP)

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