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Cutting Off H+ Leaks on the Inner Mitochondrial Membrane: A Proton Modulation Approach to Selectively Eradicate
Minsu Park1,2,3, Kyoung Sunwoo4, Yoon-Jae Kim1,2,3
1Division of Medical Oncology, Department of Internal Medicine, Korea University College of Medicine, Korea University, Seoul 02841, Korea.
Abstract:
Cancer stem cells (CSCs) are associated with the invasion and metastatic relapse of various cancers. However, current cancer therapies are limited to targeting the bulk of primary tumor cells while remaining the CSCs untouched. Here, we report a new proton (H+) modulation approach to selectively eradicate CSCs via cutting off the H+ leaks on the inner mitochondrial membrane (IMM). Based on the fruit extract of Gardenia jasminoides, a multimodal molecule channel blocker with high biosafety, namely, Bo-Mt-Ge, is developed. Importantly, in this study, we successfully identify that mitochondrial uncoupling protein UCP2 is closely correlated with the stemness of CSCs, which may offer a new perspective for selective CSC drug discovery. Mechanistic studies show that Bo-Mt-Ge can specifically inhibit the UCP2 activities, decrease the H+ influx in the matrix, regulate the electrochemical gradient, and deplete the endogenous GSH, which synergistically constitute a unique MoA to active apoptotic CSC death. Intriguingly, Bo-Mt-Ge also counteracts the therapeutic resistance via a two-pronged tactic: drug efflux pump P-glycoprotein downregulation and antiapoptotic factor (e.g., Bcl-2) inhibition. With these merits, Bo-Mt-Ge proved to be one of the safest and most efficacious anti-CSC agents, with ca. 100-fold more potent than genipin alone in vitro and in vivo. This study offers new insights and promising solutions for future CSC therapies in the clinic.
Insights
A novel proton modulation strategy targets cancer stem cells (CSCs) by inhibiting mitochondrial UCP2. This approach, using Bo-Mt-Ge, selectively eradicates CSCs and overcomes therapeutic resistance, offering a promising new cancer therapy.
Area of Science:
- Biochemistry
- Molecular Biology
- Cancer Research
Background:
- Cancer stem cells (CSCs) drive tumor invasion and metastasis.
- Current therapies often spare CSCs, leading to relapse.
- Targeting CSCs is crucial for effective cancer treatment.
Purpose of the Study:
- To develop a novel approach for selective CSC eradication.
- To investigate the role of mitochondrial proton (H+) transport in CSC stemness.
- To identify new therapeutic targets for overcoming cancer resistance.
Main Methods:
- Development of Bo-Mt-Ge, a UCP2 inhibitor derived from Gardenia jasminoides.
- Investigation of proton leak inhibition on the inner mitochondrial membrane.
- Analysis of CSC stemness markers and apoptotic pathways.
- Evaluation of Bo-Mt-Ge efficacy in vitro and in vivo.
Main Results:
- Mitochondrial uncoupling protein 2 (UCP2) is identified as a key regulator of CSC stemness.
- Bo-Mt-Ge selectively inhibits UCP2, disrupting mitochondrial electrochemical gradient and inducing CSC apoptosis.
- Bo-Mt-Ge overcomes therapeutic resistance by downregulating P-glycoprotein and inhibiting Bcl-2.
- Bo-Mt-Ge demonstrates superior potency and safety compared to genipin.
Conclusions:
- Proton modulation via UCP2 inhibition is a viable strategy for CSC targeting.
- Bo-Mt-Ge represents a potent and safe anti-CSC agent.
- This study provides new insights for developing next-generation CSC therapies.
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