Heparins increase endothelial nitric oxide bioavailability by liberating vessel-immobilized myeloperoxidase

Stephan Baldus1, Volker Rudolph, Mika Roiss

  • 1Department of Cardiology, University Hospital Hamburg-Eppendorf, Hamburg, Germany. baldus@uke.uni-hamburg.de

Circulation
|April 12, 2006
PubMed
Abstract

Insights

Heparin administration mobilizes myeloperoxidase (MPO) from blood vessels, improving vascular function and nitric oxide (NO) bioavailability in patients with coronary artery disease (CAD). This suggests MPO’s role in vascular inflammation.

Area of Science:

  • Cardiovascular Medicine
  • Inflammation Biology
  • Pharmacology

Background:

  • Neutrophils and monocytes are key players in vascular inflammatory diseases.
  • Leukocyte-derived myeloperoxidase (MPO) impairs vasomotor function by oxidizing nitric oxide (NO).
  • MPO binding to the vessel wall is crucial for endothelial dysfunction.

Purpose of the Study:

  • To investigate if heparin mobilizes MPO from human vascular compartments.
  • To determine if heparin increases vascular NO bioavailability and function.
  • To explore the anti-inflammatory effects of heparin via MPO mobilization.

Main Methods:

  • Assessed plasma MPO levels using ELISA in 109 patients before and after heparin administration.
  • Measured endothelial NO bioavailability via flow-mediated dilation and acetylcholine-induced forearm blood flow.
  • Analyzed ex vivo effects of heparin on MPO burden in vascular tissues.

Main Results:

  • Patients with coronary artery disease (CAD) showed a higher increase in plasma MPO after heparin.
  • Heparin treatment significantly improved endothelial NO bioavailability and function.
  • Heparin-induced MPO release correlated with improved endothelial function (r=0.69, P<0.01).
  • Ex vivo heparin treatment reduced MPO burden on vascular components.

Conclusions:

  • Mobilization of vessel-associated MPO by heparin may mediate anti-inflammatory effects.
  • Heparin enhances vascular NO bioavailability, potentially through MPO release.
  • These findings support a causal role for MPO in human vascular NO signaling impairment.

Related Concept Videos

Myocarditis III: Medical Management01:14

Myocarditis III: Medical Management

Myocarditis: Comprehensive Medical ManagementMyocarditis, the heart muscle inflammation, requires a comprehensive medical management strategy that addresses the underlying cause, provides supportive care, manages symptoms, and reduces cardiac workload.Infections and Autoimmune CausesAdminister appropriate antimicrobial therapy when an infectious agent causes myocarditis. For instance, penicillin treats infections caused by Group A Streptococcus. In cases where autoimmune processes are...
168
Endocarditis IV: Nursing Management01:29

Endocarditis IV: Nursing Management

Infective endocarditis (IE) is a chronic infection of the heart's endocardium, primarily affecting the heart valves. A detailed nursing assessment for a patient with IE involves collecting subjective and objective data to ensure an accurate diagnosis and timely intervention.Subjective DataThe nurse gathers information about the patient's symptoms and complaints during the subjective assessment. Patients with infective endocarditis often report non-specific symptoms that can mimic other...
314
Endocarditis I: Introduction01:25

Endocarditis I: Introduction

Introduction:Endocarditis is the infection of the endocardium, the inner lining of the heart and its valves. When the heart muscle is involved, the condition is termed myocarditis, while an infection of the outer lining is called pericarditis. Infective endocarditis (IE) primarily affects the endocardium, where pathogens adhere to the valves or lining, forming vegetation that can lead to severe complications. Infective endocarditis occurs when microorganisms, usually bacteria from other body...
382
Increased Body Temperature01:25

Increased Body Temperature

A body temperature above  38°C  (100.4 °F) is known as fever or pyrexia, and a person with fever is termed 'febrile.' Typically, the hypothalamus, a part of the brain that acts as the body's thermostat, regulates body temperature through a thermoregulatory setpoint. It receives signals from cold and warm thermal receptors throughout the body and adjusts the body's temperature accordingly. Fever occurs when this hypothalamic setpoint is altered, usually in...
6.4K
Methods of reducing fever01:22

Methods of reducing fever

The signs and symptoms of fever include hot and dry skin, flushed face, thirst, muscle aches, anorexia, headache, tachycardia, tachypnea, and fatigue. Elevated body temperature is reduced using two methods: pharmacological and nonpharmacological. Proper identification and treatment of the root cause of a fever is of utmost importance.
Pharmacological Methods of Reducing Fever:
1.2K
Homeostatic Imbalances in Body Temperature01:19

Homeostatic Imbalances in Body Temperature

Hyperthermia occurs when the body's temperature becomes unusually high, often due to heat exposure, intense physical activity, or certain illnesses. This condition can create a dangerous cycle where elevated body temperature increases the metabolic rate, generating more heat and potentially leading to organ failure and brain damage. A severe form of hyperthermia, called heat stroke, can raise body temperature to life-threatening levels. Fever, on the other hand, is a controlled form of...
4.3K