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Updated: Mar 1, 2026

Assessment of Mitochondrial Functions and Cell Viability in Renal Cells Overexpressing Protein Kinase C Isozymes
Published on: January 7, 2013
Disruption of mitochondrial electron transport chain function potentiates the pro-apoptotic effects of MAPK
Andrew P Trotta1, Jesse D Gelles2, Madhavika N Serasinghe1
1Department of Oncological Sciences, Icahn School of Medicine at Mount Sinai, New York, New York 10029; Tisch Cancer Institute, Icahn School of Medicine at Mount Sinai, New York, New York 10029.
Abstract:
The mitochondrial network is a major site of ATP production through the coupled integration of the electron transport chain (ETC) with oxidative phosphorylation. In melanoma arising from the V600E mutation in the kinase v-RAF murine sarcoma viral oncogene homolog B (BRAFV600E), oncogenic signaling enhances glucose-dependent metabolism while reducing mitochondrial ATP production. Likewise, when BRAFV600E is pharmacologically inhibited by targeted therapies (e.g. PLX-4032/vemurafenib), glucose metabolism is reduced, and cells increase mitochondrial ATP production to sustain survival. Therefore, collateral inhibition of oncogenic signaling and mitochondrial respiration may help enhance the therapeutic benefit of targeted therapies. Honokiol (HKL) is a well tolerated small molecule that disrupts mitochondrial function; however, its underlying mechanisms and potential utility with targeted anticancer therapies remain unknown. Using wild-type BRAF and BRAFV600E melanoma model systems, we demonstrate here that HKL administration rapidly reduces mitochondrial respiration by broadly inhibiting ETC complexes I, II, and V, resulting in decreased ATP levels. The subsequent energetic crisis induced two cellular responses involving cyclin-dependent kinases (CDKs). First, loss of CDK1-mediated phosphorylation of the mitochondrial division GTPase dynamin-related protein 1 promoted mitochondrial fusion, thus coupling mitochondrial energetic status and morphology. Second, HKL decreased CDK2 activity, leading to G1 cell cycle arrest. Importantly, although pharmacological inhibition of oncogenic MAPK signaling increased ETC activity, co-treatment with HKL ablated this response and vastly enhanced the rate of apoptosis. Collectively, these findings integrate HKL action with mitochondrial respiration and shape and substantiate a pro-survival role of mitochondrial function in melanoma cells after oncogenic MAPK inhibition.
Insights
Honokiol (HKL) disrupts melanoma cell energy by inhibiting mitochondrial respiration and ATP production. This enhances apoptosis when combined with targeted BRAF therapies, improving cancer treatment outcomes.
Area of Science:
- Biochemistry
- Cell Biology
- Cancer Research
Background:
- Mitochondrial ATP production is crucial for melanoma cell survival, especially during targeted therapy.
- BRAFV600E mutations alter cellular metabolism, reducing mitochondrial ATP output.
- Targeted BRAF therapies can paradoxically increase mitochondrial respiration, potentially promoting survival.
Purpose of the Study:
- To investigate the mechanisms by which Honokiol (HKL) affects mitochondrial function in melanoma.
- To determine if HKL can enhance the efficacy of targeted BRAF therapies.
- To elucidate the role of mitochondrial function in melanoma cell survival after MAPK inhibition.
Main Methods:
- Utilized wild-type BRAF and BRAFV600E melanoma models.
- Administered Honokiol (HKL) to assess its impact on mitochondrial respiration and ATP levels.
- Investigated the effects of HKL on electron transport chain (ETC) complexes and cyclin-dependent kinases (CDKs).
- Co-treated cells with HKL and BRAF inhibitors to evaluate combined therapeutic effects.
Main Results:
- HKL rapidly inhibited mitochondrial respiration by targeting ETC complexes I, II, and V, decreasing ATP production.
- HKL induced mitochondrial fusion via CDK1 and cell cycle arrest at G1 via CDK2.
- Co-treatment with HKL and BRAF inhibitors abolished the compensatory increase in ETC activity and significantly increased apoptosis.
Conclusions:
- HKL disrupts melanoma cell bioenergetics by inhibiting mitochondrial respiration and ATP synthesis.
- HKL modulates mitochondrial dynamics and cell cycle progression through CDK pathways.
- Combining HKL with targeted BRAF therapy represents a promising strategy to overcome therapeutic resistance in melanoma.
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