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Updated: Feb 27, 2026

Analyses of Mitochondrial Calcium Influx in Isolated Mitochondria and Cultured Cells
Published on: April 27, 2018
Targeting Mitochondrial Calcium Handling and Reactive Oxygen Species in Heart Failure
Alexander Dietl1, Christoph Maack2
1Klinik für Innere Medizin III, Universitätsklinikum des Saarlandes, 66421, Homburg, Germany.
Purpose Of Review:
In highly prevalent cardiac diseases, new therapeutic approaches are needed. Since the first description of oxidative stress in heart failure, reactive oxygen species (ROS) have been considered as attractive drug targets. Though clinical trials evaluating antioxidant vitamins as ROS-scavenging agents yielded neutral results in patients at cardiovascular risk, the knowledge of ROS as pathophysiological factors has considerably advanced in the past few years and led to novel treatment approaches. Here, we review recent new insights and current strategies in targeting mitochondrial calcium handling and ROS in heart failure.
Recent Findings:
Mitochondria are an important ROS source, and more recently, drug development focused on targeting mitochondria (e.g. by SS-31 or MitoQ). Important advancement has also been made to decipher how the matching of energy supply and demand through calcium (Ca2+) handling impacts on mitochondrial ROS production and elimination. This opens novel opportunities to ameliorate mitochondrial dysfunction in heart failure by targeting cytosolic and mitochondrial ion transporters to improve this matching process. According to this approach, highly specific substances as the preclinical CGP-37157, as well as the clinically used ranolazine and empagliflozin, provide promising results on different levels of evidence. Furthermore, the understanding of redox signalling relays, resembled by catalyst-mediated protein oxidation, is about to change former paradigms of ROS signalling. Novel methods, as redox proteomics, allow to precisely analyse key regulatory thiol switches, which may induce adaptive or maladaptive signalling. Additionally, the generation of genetically encoded probes increased the spatial and temporal resolution of ROS imaging and opened a new methodological window to subtle, formerly obscured processes. These novel insights may broaden our understanding of why previous attempts to target oxidative stress have failed, and at the same time provide us with new targets for drug development.
Insights
New heart failure therapies target mitochondrial calcium handling and reactive oxygen species (ROS). Understanding ROS signaling and utilizing novel methods offers new drug development opportunities beyond earlier antioxidant approaches.
Area of Science:
- Cardiology
- Mitochondrial Biology
- Oxidative Stress Research
Background:
- Heart failure necessitates novel therapeutic strategies.
- Reactive oxygen species (ROS) are implicated in cardiac disease pathophysiology.
- Previous antioxidant trials showed limited success, prompting new research directions.
Purpose of the Study:
- To review recent advancements in targeting mitochondrial calcium handling and ROS in heart failure.
- To explore novel treatment approaches based on updated knowledge of ROS signaling.
- To understand why prior ROS-targeting strategies failed and identify new targets.
Main Methods:
- Review of recent scientific literature on mitochondrial function, calcium handling, and ROS.
- Analysis of novel drug development strategies targeting mitochondria and ion transporters.
- Discussion of advanced methods like redox proteomics and genetically encoded probes for ROS imaging.
Main Results:
- Mitochondria are significant ROS sources; targeting them (e.g., SS-31, MitoQ) is a focus.
- Calcium handling impacts mitochondrial ROS production, offering targets like ion transporters (e.g., CGP-37157, ranolazine, empagliflozin).
- New insights into redox signaling and advanced imaging techniques provide a deeper understanding of ROS processes.
Conclusions:
- Targeting mitochondrial calcium handling and ROS presents promising therapeutic avenues for heart failure.
- Novel approaches are emerging from a better understanding of ROS signaling and mitochondrial dysfunction.
- Advanced methodologies are crucial for identifying and validating new drug targets in oxidative stress research.
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