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Published on: August 20, 2019
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
Background:
We recently showed that the multidrug resistance related protein-1 (MRP1) is important for the management of oxidative stress in vascular cells. However, the underlying mechanism and the in vivo relevance of these findings remain elusive. We hypothesize that inside-outside transport of leukotriene C(4) (LTC(4)) via MRP1 is a substantial proatherogenic mechanism in the vasculature. To test this hypothesis, we investigated the effects of MRP1 inhibition and LTC(4) receptor blockade (Cys-LT1 receptor) in vitro and in vivo.
Methods And Results:
MRP1 is expressed abundantly in vascular smooth muscle cells (VSMCs). Pharmacological inhibition of MRP1 via MK571 reduces angiotensin II-induced reactive oxygen species release by 59% (L012 fluorescence) in VSMCs. The release of reactive oxygen species after angiotensin II stimulation also is inhibited by blockade of the Cys-LT1 receptor with montelukast. Incubation of VSMCs with recombined LTC(4) causes enhanced rates of reactive oxygen species and proliferation in wild-type and MRP1(-/-) VSMCs. Accordingly, the LTC(4) release in the cell culture supernatant of MRP1(-/-) VSMCs is significantly decreased compared with wild-type cells. To extend our observations to the in vivo situation, atherosclerosis-prone apolipoprotein E-deficient mice on a high-cholesterol diet were treated with placebo, the MRP1 inhibitor MK571, or the Cys-LT1 receptor inhibitor montelukast for 6 weeks. Treatment with MK571 or montelukast reduced vascular reactive oxygen species production, significantly improved endothelial function, and ameliorated atherosclerotic plaque generation by 52% and 61%, respectively.
Conclusions:
These findings indicate that MRP1 and LTC(4) exert proatherosclerotic effects and that both MRP1 and LTC(4) are potentially promising targets for atheroprotective therapy.
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.
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