Multidrug resistance protein-1 affects oxidative stress, endothelial dysfunction, and atherogenesis via leukotriene

Cornelius F H Mueller1, Kerstin Wassmann, Julian D Widder

  • 1Medizinische Klinik und Poliklinik II, Universitätsklinikum Bonn, Sigmund Freud Str 25, 53105 Bonn, Germany. cornelius.mueller@ukb.uni-bonn.de

Circulation
|May 29, 2008
PubMed
Abstract

Insights

Multidrug resistance protein-1 (MRP1) and leukotriene C4 (LTC4) promote atherosclerosis by increasing oxidative stress in vascular cells. Inhibiting MRP1 or the LTC4 receptor reduces plaque formation and improves vascular function.

Area of Science:

  • Cardiovascular Biology
  • Molecular Medicine
  • Oxidative Stress Research

Background:

  • Multidrug resistance protein-1 (MRP1) plays a role in managing oxidative stress in vascular cells.
  • The precise mechanism and in vivo relevance of MRP1 in vascular oxidative stress remain unclear.
  • Leukotriene C4 (LTC4) transport via MRP1 is hypothesized to be a proatherogenic mechanism.

Purpose of the Study:

  • To investigate the role of MRP1 and LTC4 in vascular oxidative stress and atherosclerosis.
  • To determine if inhibiting MRP1 or the LTC4 receptor (Cys-LT1) has atheroprotective effects in vitro and in vivo.

Main Methods:

  • Vascular smooth muscle cells (VSMCs) were used to study the effects of MRP1 inhibition (MK571) and Cys-LT1 receptor blockade (montelukast) on reactive oxygen species (ROS) release.
  • LTC4 release and its effects on VSMC proliferation were assessed.
  • Atherosclerosis-prone apolipoprotein E-deficient mice were treated with MRP1 or Cys-LT1 receptor inhibitors to evaluate in vivo effects on vascular ROS, endothelial function, and atherosclerotic plaque burden.

Main Results:

  • MRP1 inhibition (MK571) reduced angiotensin II-induced ROS release in VSMCs by 59%.
  • Cys-LT1 receptor blockade (montelukast) also inhibited angiotensin II-induced ROS release.
  • Inhibition of MRP1 or Cys-LT1 receptor in mice significantly reduced vascular ROS production, improved endothelial function, and decreased atherosclerotic plaque by 52% and 61%, respectively.

Conclusions:

  • MRP1 and LTC4 contribute to proatherosclerotic effects.
  • Targeting MRP1 or the LTC4 receptor represents a promising therapeutic strategy for atheroprotection.

Related Concept Videos

Clinical Significance of Antibiotic Resistance01:25

Clinical Significance of Antibiotic Resistance

Methicillin-resistant Staphylococcus aureus (MRSA) presents a critical public health threat, arising from its capacity to resist β-lactam antibiotics due to acquisition of the mecA gene within the staphylococcal cassette chromosome mec (SCCmec). This gene encodes penicillin-binding protein 2a (PBP2a), which impairs binding efficacy of methicillin and other β-lactams. MRSA has evolved into distinct clonal lineages impacting humans and animals alike, reinforcing its significance within...
7
Mechanism of Antibiotic Resistance in MRSA01:25

Mechanism of Antibiotic Resistance in MRSA

Antibiotic resistance in bacteria arises when microorganisms evolve the ability to withstand drugs designed to kill them or inhibit their growth, rendering once-effective treatments useless. This phenomenon, driven by genetic change and selection under antibiotic exposure, poses a profound threat to modern medicine. Mechanisms include drug-inactivating enzymes (e.g., β-lactamases), efflux pumps that eject antibiotics, mutations altering antibiotic targets, decreased drug uptake, and...
37
Pharmacogenetics of Drug Transporters: P-Glycoprotein and Solute Carrier Transporters01:16

Pharmacogenetics of Drug Transporters: P-Glycoprotein and Solute Carrier Transporters

The pharmacogenetics of drug transporters is increasingly recognized as a critical factor influencing interindividual variability in drug absorption, distribution, and elimination. These membrane-bound proteins regulate drugs' movement across cellular barriers by actively pumping them out (efflux) or facilitating their uptake (influx). Among the major transporter families, ATP-binding cassette (ABC) and solute carrier (SLC) transporters play particularly prominent roles. Genetic polymorphisms...
104
Pharmacogenetic Phenotypes: Alterations in Pharmacokinetics, Drug Targets and Biologic Milieu01:29

Pharmacogenetic Phenotypes: Alterations in Pharmacokinetics, Drug Targets and Biologic Milieu

Genetic variations significantly influence drug response through pharmacokinetics, receptor interactions, and biologic milieu modifications. Pharmacokinetic alterations impact drug metabolism and clearance, affecting efficacy and toxicity. Variants in drug-metabolizing enzymes, such as CYP2C9 and CYP2C19, alter drug activation and elimination. For example, CYP2C9 loss-of-function variants require lower warfarin doses to prevent excessive bleeding, while CYP2C19 variants reduce clopidogrel...
102
Pharmacogenetics of Drug Targets: β₂-Adrenergic Receptors, Apo E, Thymidylate Synthase01:11

Pharmacogenetics of Drug Targets: β₂-Adrenergic Receptors, Apo E, Thymidylate Synthase

Genetic polymorphisms in drug targets have emerged as critical determinants of interindividual variability in drug response and toxicity. Pharmacogenomic investigations increasingly focus on identifying these variations to personalize and optimize therapeutic interventions. A drug target may be a receptor, enzyme, or signaling protein involved in pharmacologic responses or disease-related pathways. While early pharmacogenetic studies focused primarily on drug metabolism, current research...
65
Chronic Obstructive Pulmonary Disease-II: Pathophysiology01:20

Chronic Obstructive Pulmonary Disease-II: Pathophysiology

Chronic Obstructive Pulmonary Disease (COPD) pathophysiology is intricate and multifaceted, involving a complex interplay of physiological processes. Understanding these mechanisms is crucial for effectively managing and treating COPD. Here is an in-depth look at the critical elements in the pathophysiology of COPD:
Chronic Inflammation
5.0K