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Influence of mitochondrion-toxic agents on the cardiovascular system
Josef Finsterer1, Peter Ohnsorge
1Krankenanstalt Rudolfstiftung, Vienna, Austria.
Abstract:
Cardiovascular disease may be induced or worsened by mitochondrion-toxic agents. Mitochondrion-toxic agents may be classified as those with or without a clinical effect, those which induce cardiac disease only in humans or animals or both, as prescribed drugs, illicit drugs, exotoxins, or nutritiants, as those which affect the heart exclusively or also other organs, as those which are effective only in patients with a mitochondrial disorder or cardiac disease or also in healthy subjects, or as solid, liquid, or volatile agents. In humans, cardiotoxic agents due to mitochondrial dysfunction include anthracyclines (particularly doxorubicin), mitoxantrone, cyclophosphamide, cisplatin, fluorouracil, imatinib, bortezomib, trastuzumab, arsenic trioxide, cyclosporine-A, zidovudine, lamotrigine, glycosides, lidocain, isoproterenol, nitroprusside, pivalic acid, alcohol, cocaine, pesticides, cadmium, mycotoxins, cyanotoxins, meat meal, or carbon monoxide. Even more agents exhibit cardiac abnormalities due to mitochondrion-toxicity only in animals or tissue cultures. The mitochondrion-toxic effect results from impairment of the respiratory chain, the oxidative phosphorylation, the Krebs cycle, or the β-oxidation, from decrease of the mitochondrion-membrane potential, from increased oxidative stress, reduced anti-oxidative capacity, or from induction of apoptosis. Cardiac abnormalities induced via these mechanisms include cardiomyopathy, myocarditis, coronary heart disease, arrhythmias, heart failure, or Takotsubo syndrome. Discontinuation of the cardiotoxic agent results in complete recovery in the majority of the cases. Antioxidants and nutritiants may be of additional help. Particularly coenzyme-Q, riboflavin, vitamin-E, vitamin-C, L-carnitine, vitamin-D, thiamin, folic acid, omega-3 fatty acids, and D-ribose may alleviate mitochondrial cardiotoxic effects.
Insights
Mitochondrion-toxic agents can cause cardiovascular disease by impairing heart cell energy production. Stopping the agent often leads to recovery, with antioxidants potentially aiding the process.
Area of Science:
- Biochemistry
- Cardiology
- Toxicology
Background:
- Cardiovascular disease can be triggered or exacerbated by agents toxic to mitochondria.
- Mitochondrion-toxic agents encompass a broad range, including pharmaceuticals, illicit drugs, environmental toxins, and nutritional components.
- These agents can affect the heart exclusively or in conjunction with other organs, and their impact may vary between individuals with or without pre-existing conditions.
Purpose of the Study:
- To review and classify mitochondrion-toxic agents that induce or worsen cardiovascular disease.
- To elucidate the mechanisms by which these agents cause cardiac dysfunction.
- To identify potential therapeutic strategies for mitigating mitochondrial cardiotoxicity.
Main Methods:
- Literature review and classification of known mitochondrion-toxic agents.
- Analysis of the biochemical pathways affected by these agents within mitochondria.
- Compilation of clinical and experimental data on cardiotoxicity induced by various agents.
Main Results:
- Numerous agents, including specific chemotherapeutics (e.g., anthracyclines, cisplatin), illicit drugs (e.g., cocaine), and environmental toxins (e.g., cadmium, carbon monoxide), were identified as mitochondrion-toxic.
- Mitochondrial dysfunction mechanisms include respiratory chain impairment, decreased membrane potential, increased oxidative stress, and apoptosis induction.
- Induced cardiac abnormalities range from cardiomyopathy and myocarditis to arrhythmias and heart failure.
Conclusions:
- Cardiotoxicity from mitochondrion-toxic agents is a significant clinical concern.
- Discontinuation of the offending agent is the primary treatment, often leading to full recovery.
- Antioxidants and specific nutrients (e.g., coenzyme-Q, L-carnitine, vitamins) may offer supportive therapy to alleviate mitochondrial cardiotoxic effects.
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