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Published on: June 27, 2025
A New Combination Therapy Utilizing Mitochondria-Targeting Small-Molecule Ligands and Clinical Inhibitors against
Ka-Hin Chan1, Bo-Xin Zheng1, Yingying Zheng1
1Department of Applied Biology and Chemical Technology, The Hong Kong Polytechnic University, Kowloon, Hung Hom, Hong Kong SAR 999077, P.R. China.
Abstract:
Mitochondria are believed to be a potential drug target in cancer therapies because of their critical and multiple biofunctions in supplying energy and regulating signaling pathways for cell cycle and proliferation. It has been known that mitochondrial DNA (mtDNA) contains many guanine-rich sequences, and some of them may fold into stable G-quadruplex (G4) structures in vitro. The stabilization of mtDNA G4s with potent small-molecule ligands in cancer cells may potentially interrupt mitochondrial metabolism such as impairing the oxidative phosphorylation system (OXPHOS) in ATP synthesis to cause energy deficiency. Therefore, mtDNA G4s have been an emerging drug target for chemical biology and anticancer study. Nonetheless, the development of potent ligands specifically targeting mitochondria and interacting with mtDNA G4s in living cells remains a challenge. This largely limits the feasibility to understand the mechanism of actions targeting mitochondria and mtDNA G4s for drug discovery. Herein, we designed and synthesized several new mitochondria-targeting small molecules that bind to mtDNA G4s in melanoma cancer cells (A375) to cause mitochondrial metabolism alternation. Among the ligands, B1N was found to be the most potent one to downregulate the expression of some critical mitochondrial genes and proteins, inhibit ATP synthesis, and substantially induce metabolism reprogramming to upregulate glycolysis. Moreover, the combination therapy study of 1.75 μM B1N with a clinical BRAF inhibitor (Vemurafenib, 0.2 μM) showed synergistic effects (CI = 0.67) against A375 cells. This new combined treatment significantly downregulates ATP production and glycolysis and induces acute senescence. The present study demonstrates an innovative and effective combination therapy strategy utilizing mitochondrion-targeting ligands and clinical inhibitors against melanoma.
Insights
Researchers developed new mitochondria-targeting molecules to stabilize mitochondrial DNA G-quadruplexes (G4s) in melanoma cells. The compound B1N effectively disrupted cancer cell metabolism and, when combined with Vemurafenib, showed synergistic anticancer effects.
Area of Science:
- Biochemistry
- Molecular Biology
- Cancer Research
Background:
- Mitochondria are crucial for cancer cell energy and proliferation, making them a key therapeutic target.
- Mitochondrial DNA (mtDNA) G-quadruplexes (G4s) are potential targets, but developing specific ligands for cellular use is challenging.
Purpose of the Study:
- To design and synthesize novel mitochondria-targeting small molecules that interact with mtDNA G4s.
- To investigate the effects of these ligands on mitochondrial metabolism and cancer cell viability.
- To explore combination therapy strategies using these ligands and clinical inhibitors.
Main Methods:
- Design and synthesis of mitochondria-targeting small molecules.
- Treatment of A375 melanoma cells with synthesized ligands.
- Analysis of gene/protein expression, ATP synthesis, and metabolic reprogramming (glycolysis).
- Combination therapy with B1N and Vemurafenib.
Main Results:
- The ligand B1N effectively targeted mtDNA G4s, downregulated key mitochondrial genes/proteins, inhibited ATP synthesis, and promoted glycolysis.
- Combination therapy of B1N and Vemurafenib exhibited synergistic effects (CI=0.67) against A375 cells.
- The combined treatment significantly reduced ATP production and glycolysis, inducing acute senescence.
Conclusions:
- Mitochondria-targeting G4 ligands represent a promising strategy for cancer therapy.
- B1N demonstrates potent anticancer activity by disrupting mitochondrial metabolism.
- Combination therapy with B1N and Vemurafenib offers an effective strategy against melanoma by targeting both mitochondrial and BRAF pathways.
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