159 Trpm2 ion channel activation contributes to redox-sensitive vascular dysfunction in hypertension. (5th June 2017)
- Record Type:
- Journal Article
- Title:
- 159 Trpm2 ion channel activation contributes to redox-sensitive vascular dysfunction in hypertension. (5th June 2017)
- Main Title:
- 159 Trpm2 ion channel activation contributes to redox-sensitive vascular dysfunction in hypertension
- Authors:
- Alves-Lopes, Rheure
Montezano, Augusto C
Neves, Karla B
Anagnostopoulou, Aikaterini
Lacchini, Silvia
Touyz, Rhian M - Abstract:
- Abstract : The interplay between reactive oxygen species (ROS) and Ca 2?+ plays a major role in the regulation of vascular function. However, mechanisms underlying ROS-induced Ca 2+ -influx and signalling are not fully established. The transient receptor potential melastatin 2 cation channel (TRPM2) is a redox-sensitive cation channel that promotes influx of Ca 2+ after activation by H2 O2 through PARP-ADPR-dependent mechanisms in inflammatory cells. TRPM2 also regulates Na + influx and by increasing intracellular Na + content, it could interfere with the function of the Na + -Ca 2+ exchanger (NCX), which may confer a novel mechanism whereby ROS influences Ca 2+ influx and signalling. Here, we postulated that redox-sensitive Ca 2+ regulation involves TRPM2 and NCX; a process exacerbated in hypertension leading to vascular dysfunction. We also interrogated the role of Nox4 in these processes. Mesenteric arteries from wild-type (WT), LinA3 (chronic Ang II-induced mouse model of hypertension), Nox4 -/-, and LinA3/Nox4 -/- and VSMCs cultures from human arteries were used. Vascular function, assessed by wire myography, demonstrated that mesenteric arteries from LinA3 mice present increased Phe-induced vasoconstriction (Emax – LinA3 vs WT: 9.37±0.51 vs 6.79±0.29); an effect ameliorated by olaparib (PARP inhibitor) and 2-APB (TRPM2 blocker). The mRNA expression of NOX4 (fold change: 3.05±0.30), TRPM2 (fold change: 1.38±0.24), and NCX exchanger (fold change: 1.97±0.34) wereAbstract : The interplay between reactive oxygen species (ROS) and Ca 2?+ plays a major role in the regulation of vascular function. However, mechanisms underlying ROS-induced Ca 2+ -influx and signalling are not fully established. The transient receptor potential melastatin 2 cation channel (TRPM2) is a redox-sensitive cation channel that promotes influx of Ca 2+ after activation by H2 O2 through PARP-ADPR-dependent mechanisms in inflammatory cells. TRPM2 also regulates Na + influx and by increasing intracellular Na + content, it could interfere with the function of the Na + -Ca 2+ exchanger (NCX), which may confer a novel mechanism whereby ROS influences Ca 2+ influx and signalling. Here, we postulated that redox-sensitive Ca 2+ regulation involves TRPM2 and NCX; a process exacerbated in hypertension leading to vascular dysfunction. We also interrogated the role of Nox4 in these processes. Mesenteric arteries from wild-type (WT), LinA3 (chronic Ang II-induced mouse model of hypertension), Nox4 -/-, and LinA3/Nox4 -/- and VSMCs cultures from human arteries were used. Vascular function, assessed by wire myography, demonstrated that mesenteric arteries from LinA3 mice present increased Phe-induced vasoconstriction (Emax – LinA3 vs WT: 9.37±0.51 vs 6.79±0.29); an effect ameliorated by olaparib (PARP inhibitor) and 2-APB (TRPM2 blocker). The mRNA expression of NOX4 (fold change: 3.05±0.30), TRPM2 (fold change: 1.38±0.24), and NCX exchanger (fold change: 1.97±0.34) were increased in LinA3 mice; an effect not observed in LinA3/Nox4 -/- mice (a model with reduced H2O2 levels). Ang II stimulation increased Ca 2+ influx in human VSMC from normotensive (AUC-Ex490/Em535: 15400±917.5) and hypertensive subjects (AUC-Ex490/Em535: 22460±2388). TRPM2 activation inhibitors, such as 2-APB, olaparib and 8-Br, as well as, NCX inhibitors benzamil, KB-R7943 and YM244769, ameliorated Ang II-induced Ca 2+ influx in human VSMC. In conclusion, TRPM2/NCX-induced increase in intracellular levels of calcium may be involved in hypertension-associated vascular dysfunction. Our data also suggests that oxidative stress regulates Ca 2+ homeostasis through TRPM2-dependent mechanisms. … (more)
- Is Part Of:
- Heart. Volume 103(2017)Supplement 5
- Journal:
- Heart
- Issue:
- Volume 103(2017)Supplement 5
- Issue Display:
- Volume 103, Issue 5 (2017)
- Year:
- 2017
- Volume:
- 103
- Issue:
- 5
- Issue Sort Value:
- 2017-0103-0005-0000
- Page Start:
- A114
- Page End:
- A115
- Publication Date:
- 2017-06-05
- Subjects:
- Heart -- Diseases -- Treatment -- Periodicals
Cardiology -- Periodicals
616.12 - Journal URLs:
- http://www.bmj.com/archive ↗
http://heart.bmj.com ↗
http://www.heartjnl.com ↗ - DOI:
- 10.1136/heartjnl-2017-311726.158 ↗
- Languages:
- English
- ISSNs:
- 1355-6037
- Deposit Type:
- Legaldeposit
- View Content:
- Available online (eLD content is only available in our Reading Rooms) ↗
- Physical Locations:
- British Library DSC - BLDSS-3PM
British Library HMNTS - ELD Digital store - Ingest File:
- 19676.xml