Melatonin and mitochondrial protection in cardiac ischemia–reperfusion injury: mechanisms, evidence and translational perspectives

Мелатонин и защита митохондрий при ишемически-реперфузионном повреждении сердца: механизмы, доказательства и перспективы трансляции
Gaia Pedriali, Sara Leo, Margherita Tiezzi, Elena Nicoletta Colarusso, Giampaolo Morciano, Elena Tremoli, Paolo Pinton
2026-02-24

cardiac ischemia-reperfusion injurymelatoninmitochondrial permeability transition poremitochondrial protectionmitophagy
Cardiac ischemia-reperfusion injury (IRI) leads to significant mitochondrial impairment, which contributes to cell death and hampers myocardial recovery. During IRI, mitochondria are subjected to oxidative stress, calcium overload, and altered dynamics, resulting in the opening of the mitochondrial permeability transition pore (mPTP), release of cytochrome c, and activation of apoptotic pathways. Melatonin, a pleiotropic indoleamine produced by the pineal gland and other tissues, has cardioprotective effects through both direct antioxidant activity and receptor-mediated mechanisms. This review explores melatonin's role in maintaining mitochondrial integrity under IRI conditions. Melatonin counteracts oxidative damage by neutralizing reactive oxygen species, stabilizing mitochondrial membrane potential, and preventing mPTP opening, thereby reducing activation of cell death pathways. It also supports mitochondrial biogenesis and dynamics, contributing to energy balance and reduced oxidative burden. In addition, melatonin regulates mitophagy, ensuring mitochondrial quality control and preventing excessive degradation, which collectively contributes to restoring mitochondrial function and cellular metabolism. In rodent preclinical models, melatonin administration before ischemia, during ischemia, or at reperfusion has consistently reduced infarct size and improved cardiac function. While these preclinical findings are encouraging, studies on rabbits or pigs and clinical studies have not consistently replicated these benefits. The variability in outcomes may be attributed to differences in study design, timing and method of melatonin administration, and types of endpoints measured. Comorbidities, risk factors, and comedications further influence mitochondrial biology and melatonin's efficacy in cardiac IRI. A dedicated comparative analysis evaluates melatonin against established and emerging cardioprotective approaches targeting mitochondria, underscoring its potential for combination therapies.
1
Benefits were not consistently reproduced in rabbit, pig, or clinical studies, with outcomes influenced by administration timing and route, endpoint selection, comorbidities, risk factors, and comedications.
2
Cardiac ischemia–reperfusion injury disrupts mitochondria through oxidative stress, calcium overload, altered dynamics, mPTP opening, cytochrome c release, and apoptosis.
3
In rodent models, melatonin given before ischemia, during ischemia, or at reperfusion consistently reduced infarct size and improved cardiac function.
4
Melatonin protects mitochondria by scavenging reactive oxygen species, preserving membrane potential, preventing mPTP opening, and limiting cell-death signaling.
5
Melatonin supports mitochondrial biogenesis and dynamics while regulating mitophagy, thereby improving mitochondrial quality control, energy balance, and cellular metabolism.

Cardiac mitochondria during ischemia–reperfusion injury

Melatonin-mediated preservation of mitochondrial integrity and function, including modulation of oxidative stress, membrane potential, mPTP opening, mitochondrial dynamics, biogenesis, mitophagy, and cardiac recovery

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2026-02-24
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Gaia Pedriali
Sara Leo
Margherita Tiezzi
Elena Nicoletta Colarusso
Giampaolo Morciano
Elena Tremoli
Paolo Pinton
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