Cryptolepine inhibits melanoma cell growth through coordinated changes in mitochondrial biogenesis, dynamics and
Harish C Pal1, Ram Prasad1,2, Santosh K Katiyar3,4,5,6
1Department of Dermatology, University of Alabama at Birmingham, Birmingham, AL, USA.
Abstract:
Dysregulated mitochondrial dynamics and biogenesis have been associated with various pathological conditions including cancers. Here, we assessed the therapeutic effect of cryptolepine, a pharmacologically active alkaloid derived from the roots of Cryptolepis sanguinolenta, on melanoma cell growth. Treatment of human melanoma cell lines (A375, Hs294t, SK-Mel28 and SK-Mel119) with cryptolepine (1.0, 2.5, 5.0 and 7.5 μM) for 24 and 48 h significantly (P < 0.001) inhibited the growth of melanoma cells but not normal melanocytes. The inhibitory effect of cryptolepine was associated with loss of mitochondrial membrane potential and reduced protein expression of Mfn1, Mfn2, Opa1 and p-Drp1 leading to disruption of mitochondrial dynamics. A decrease in the levels of ATP and mitochondrial mass were associated with activation of the metabolic tumor suppressor AMPKα1/2-LKB1, and a reduction in mTOR signaling. Decreased expression of SDH-A and COX-I demonstrated that cryptolepine treatment reduced mitochondrial biogenesis. In vivo treatment of A375 xenograft-bearing nude mice with cryptolepine (10 mg/Kg body weight, i.p.) resulted in significant inhibition of tumor growth, which was associated with disruption of mitochondrial dynamics and a reduction in mitochondrial biogenesis. Our study suggests that low toxicity phytochemicals like cryptolepine may be tested for the treatment of melanoma.
Insights
Cryptolepine, a natural compound, effectively inhibits melanoma cell growth by disrupting mitochondrial dynamics and biogenesis. This phytochemical shows promise as a low-toxicity therapeutic agent for melanoma treatment.
Area of Science:
- Biochemistry
- Pharmacology
- Oncology
Background:
- Mitochondrial dysfunction is linked to cancer development.
- Melanoma progression involves alterations in mitochondrial dynamics and biogenesis.
Purpose of the Study:
- To investigate the therapeutic potential of cryptolepine against melanoma.
- To elucidate the mechanisms underlying cryptolepine's anti-melanoma effects.
Main Methods:
- In vitro treatment of human melanoma cell lines with cryptolepine.
- Assessment of cell viability, mitochondrial membrane potential, and protein expression.
- In vivo studies using A375 xenograft mouse models.
Main Results:
- Cryptolepine significantly inhibited melanoma cell growth without affecting normal melanocytes.
- Treatment disrupted mitochondrial dynamics by affecting key proteins (Mfn1, Mfn2, Opa1, p-Drp1) and reduced mitochondrial membrane potential.
- Cryptolepine decreased ATP levels and mitochondrial mass, activating AMPKα1/2-LKB1 and inhibiting mTOR signaling.
- Reduced expression of SDH-A and COX-I indicated suppressed mitochondrial biogenesis.
- In vivo, cryptolepine significantly inhibited tumor growth in xenograft models.
Conclusions:
- Cryptolepine exhibits potent anti-melanoma activity by targeting mitochondrial dynamics and biogenesis.
- The compound activates the AMPK-LKB1 pathway and inhibits mTOR signaling.
- Cryptolepine demonstrates potential as a low-toxicity therapeutic candidate for melanoma.
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