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Published on: September 17, 2021
NADPH oxidases as a source of oxidative stress and molecular target in ischemia/reperfusion injury
Pamela W M Kleikers1, K Wingler, J J R Hermans
1Vascular Drug Discovery Group, Department of Pharmacology and Cardiovascular Research Institute Maastricht, Faculty of Health, Medicine and Life Sciences, Maastricht University, Universiteitssingel 50, 6229 ER Maastricht, The Netherlands. p.kleikers@maastrichtuniversity.nl
Abstract:
Ischemia/reperfusion injury (IRI) is crucial in the pathology of major cardiovascular diseases, such as stroke and myocardial infarction. Paradoxically, both the lack of oxygen during ischemia and the replenishment of oxygen during reperfusion can cause tissue injury. Clinical outcome is also determined by a third, post-reperfusion phase characterized by tissue remodeling and adaptation. Increased levels of reactive oxygen species (ROS) have been suggested to be key players in all three phases. As a second paradox, ROS seem to play a double-edged role in IRI, with both detrimental and beneficial effects. These Janus-faced effects of ROS may be linked to the different sources of ROS or to the different types of ROS that exist and may also depend on the phase of IRI. With respect to therapeutic implications, an untargeted application of antioxidants may not differentiate between detrimental and beneficial ROS, which might explain why this approach is clinically ineffective in lowering cardiovascular mortality. Under some conditions, antioxidants even appear to be harmful. In this review, we discuss recent breakthroughs regarding a more targeted and promising approach to therapeutically modulate ROS in IRI. We will focus on NADPH oxidases and their catalytic subunits, NOX, as they represent the only known enzyme family with the sole function to produce ROS. Similar to ROS, NADPH oxidases may play a dual role as different NOX isoforms may mediate detrimental or protective processes. Unraveling the precise sequence of events, i.e., determining which role the individual NOX isoforms play in the various phases of IRI, may provide the crucial molecular and mechanistic understanding to finally effectively target oxidative stress.
Insights
Reactive oxygen species (ROS) play a complex role in ischemia/reperfusion injury (IRI), exhibiting both harmful and beneficial effects. Targeting specific NADPH oxidase (NOX) enzymes offers a promising therapeutic strategy for cardiovascular diseases.
Area of Science:
- Cardiovascular Research
- Oxidative Stress Biology
- Molecular Medicine
Background:
- Ischemia/reperfusion injury (IRI) significantly contributes to cardiovascular diseases like stroke and myocardial infarction.
- Both oxygen deprivation (ischemia) and reintroduction (reperfusion) can induce tissue damage, with a critical post-reperfusion remodeling phase.
- Reactive oxygen species (ROS) are implicated in all phases of IRI, exhibiting paradoxical dual roles.
Purpose of the Study:
- To review recent advances in therapeutically modulating ROS in IRI.
- To highlight NADPH oxidases (NOX) as key targets due to their sole function in ROS production.
- To emphasize the need for a targeted approach to address the complex role of ROS and NOX isoforms in IRI.
Main Methods:
- Literature review focusing on the dual role of ROS in IRI.
- Analysis of NADPH oxidases (NOX) and their isoforms in the context of IRI.
- Discussion of therapeutic strategies targeting specific NOX isoforms.
Main Results:
- ROS exhibit context-dependent detrimental and beneficial effects in IRI, influenced by source, type, and IRI phase.
- NADPH oxidases (NOX) are the primary enzymatic source of ROS and also display dual roles.
- Current untargeted antioxidant therapies are often ineffective or even harmful in IRI.
Conclusions:
- Understanding the specific roles of individual NOX isoforms across IRI phases is crucial for effective therapy.
- Targeting specific NOX enzymes, rather than general antioxidants, holds promise for treating IRI.
- Further research into NOX isoform function will provide essential mechanistic insights for novel therapeutic interventions.
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