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Energy metabolism modulation by biguanides in comparison with rotenone in rat liver and heart
Sabrina Heinz1,2, Alexius Freyberger3, Bettina Lawrenz3
1Bayer AG, Pharmaceuticals, Translational Sciences, 42113, Wuppertal, Germany. sabrina_heinz@yahoo.de.
Abstract:
The biguanide metformin, a widely used antidiabetic drug, has received great interest in oncology research in recent years after an epidemiological study showed a link between metformin treatment and a reduced cancer risk in diabetic patients. Since mitochondrial metabolism has become a target for possible cancer therapeutic approaches, especially for tumors relying on oxidative metabolism, mitochondrial complex I inhibition is under discussion to be responsible for the anti-cancer effect of metformin. Rotenone, a well-known strong mitochondrial complex I inhibitor, yet associated with toxic effects, has also shown anti-cancer activity. Thus, we compared metformin and phenformin, another biguanide previously on the market as antidiabetic, with rotenone, to elucidate potential mechanisms rendering biguanides apparently less toxic than rotenone. Therefore, we conducted in vivo rat studies with metformin and phenformin, based on an experimental design previously described for mechanistic investigations of the effects of rotenone, including blood and tissue analysis, histopathology and gene expression profiling. These investigations show that the mechanistic profile of phenformin appears similar to that of rotenone, yet at a quantitatively reduced level, whereas metformin displays only transient similarities after one day of treatment. A potential reason may be that metformin, but not rotenone or phenformin, self-limits its entry into mitochondria due to its molecular properties. Thus, our detailed molecular characterization of these compounds suggests that inhibition of mitochondrial functions can serve as target for an anti-cancer mode of action, but should be self-limited or balanced to some extent to avoid exhaustion of all energy stores.
Insights
Metformin and phenformin, antidiabetic drugs, were compared to rotenone for anti-cancer effects. Biguanides show potential cancer-fighting mechanisms with self-limited mitochondrial inhibition, unlike rotenone.
Area of Science:
- Mitochondrial Metabolism and Cancer Therapeutics
- Pharmacology and Toxicology of Biguanides
Background:
- Metformin, an antidiabetic drug, shows reduced cancer risk in diabetic patients, suggesting anti-cancer potential.
- Mitochondrial complex I inhibition is a proposed anti-cancer mechanism for metformin, similar to rotenone.
- Biguanides like metformin and phenformin may offer less toxic alternatives to rotenone for cancer therapy.
Purpose of the Study:
- To compare the anti-cancer mechanisms of metformin and phenformin with rotenone in vivo.
- To elucidate why biguanides might be less toxic than rotenone despite similar mechanisms.
- To investigate the role of mitochondrial function inhibition in the anti-cancer effects of these compounds.
Main Methods:
- In vivo rat studies comparing metformin, phenformin, and rotenone.
- Utilized established experimental designs for mechanistic investigations.
- Included blood and tissue analysis, histopathology, and gene expression profiling.
Main Results:
- Phenformin's mechanism of action resembles rotenone's but is quantitatively reduced.
- Metformin shows only transient similarities to rotenone's mechanism.
- Metformin's self-limiting mitochondrial entry may explain its reduced toxicity compared to rotenone and phenformin.
Conclusions:
- Inhibition of mitochondrial function is a viable anti-cancer strategy.
- Biguanides like metformin and phenformin exhibit self-limited mitochondrial inhibition, potentially reducing toxicity.
- Balancing mitochondrial inhibition is crucial to avoid energy depletion and maintain therapeutic efficacy.
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