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Circulating microparticles from patients with myocardial infarction cause endothelial dysfunction
C M Boulanger1, A Scoazec, T Ebrahimian
1INSERM U541, IFR-Circulation, Service de Cardiologie, Hôpital Lariboisière, Paris, France. cboulang@infobiogen.fr
Background:
Shed membrane microparticles circulate in the peripheral blood of nonischemic (NI) patients and patients with myocardial infarction (MI). We investigated whether or not these microparticles would affect endothelium-dependent responses.
Methods And Results:
Rat aortic rings with endothelium were exposed for 24 hours to circulating microparticles isolated from 7 patients with NI syndromes and 19 patients with acute MI. Endothelium-dependent relaxations to acetylcholine were not affected by high concentrations of microparticles from NI patients (P=0.80). However, significant impairment was observed in preparations exposed to microparticles from patients with MI at low and high concentrations, corresponding to 0.7-fold and 2-fold circulating plasma levels (P=0.05 and 0.001, respectively). Impairment was not affected by diclofenac (P=0.47), nor by the cell-permeable superoxide dismutase mimetic Mn(III)tetra(4-benzoic acid) porphyrin chloride (P=0.33), but it was abolished by endothelium removal or by N(omega)monomethyl-L-arginine. Relaxations to the calcium ionophore ionomycin were decreased in rings exposed to microparticles from MI patients (P=0.05 and 0.009 for low and high concentrations, respectively), but microparticles from NI patients had no effect (P=0.81). Finally, high concentrations of microparticles from MI patients affected neither endothelium-independent relaxation to sodium nitroprusside (P=0.59) nor expression of the endothelial nitric oxide synthase (P=0.43).
Conclusions:
Circulating microparticles from patients with MI selectively impair the endothelial nitric oxide transduction pathway and, therefore, could contribute to the general vasomotor dysfunction observed after MI, even in angiographically normal arteries.
Insights
Microparticles from myocardial infarction (MI) patients impair blood vessel function by affecting the nitric oxide pathway. These circulating microparticles may explain vasomotor dysfunction after MI.
Area of Science:
- Cardiovascular Biology
- Endothelial Function
- Microparticle Biology
Background:
- Circulating membrane microparticles are present in both non-ischemic and myocardial infarction (MI) patients.
- The impact of these microparticles on endothelium-dependent responses remains to be fully elucidated.
Purpose of the Study:
- To investigate the effect of circulating microparticles from MI patients on endothelium-dependent vascular responses.
- To determine if microparticles from non-ischemic (NI) patients have a similar effect.
Main Methods:
- Rat aortic rings with intact endothelium were incubated with microparticles from NI and MI patients.
- Endothelium-dependent relaxations to acetylcholine and ionomycin were measured.
- Endothelium-independent relaxations and endothelial nitric oxide synthase (eNOS) expression were also assessed.
Main Results:
- Microparticles from MI patients significantly impaired endothelium-dependent relaxations to acetylcholine and ionomycin.
- Microparticles from NI patients did not affect these relaxations.
- The impairment was linked to the nitric oxide pathway and was not influenced by anti-inflammatory agents or superoxide dismutase mimetics.
Conclusions:
- Circulating microparticles from MI patients selectively impair the endothelial nitric oxide (NO) transduction pathway.
- These microparticles may contribute to the vasomotor dysfunction observed in patients post-MI.
- This dysfunction can occur even in arteries without significant blockages.
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