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Updated: Oct 9, 2025

Hyperpolarized 13C Metabolic Magnetic Resonance Spectroscopy and Imaging
Published on: December 30, 2016
Targeting Mitochondrial OXPHOS and Their Regulatory Signals in Prostate Cancers
Chia-Lin Chen1, Ching-Yu Lin1, Hsing-Jien Kung1,2,3,4
1Ph.D. Program for Cancer Biology and Drug Discovery, College of Medical Science and Technology, Taipei Medical University, Taipei 110, Taiwan.
Abstract:
Increasing evidence suggests that tumor development requires not only oncogene/tumor suppressor mutations to drive the growth, survival, and metastasis but also metabolic adaptations to meet the increasing energy demand for rapid cellular expansion and to cope with the often nutritional and oxygen-deprived microenvironment. One well-recognized strategy is to shift the metabolic flow from oxidative phosphorylation (OXPHOS) or respiration in mitochondria to glycolysis or fermentation in cytosol, known as Warburg effects. However, not all cancer cells follow this paradigm. In the development of prostate cancer, OXPHOS actually increases as compared to normal prostate tissue. This is because normal prostate epithelial cells divert citrate in mitochondria for the TCA cycle to the cytosol for secretion into seminal fluid. The sustained level of OXPHOS in primary tumors persists in progression to an advanced stage. As such, targeting OXPHOS and mitochondrial activities in general present therapeutic opportunities. In this review, we summarize the recent findings of the key regulators of the OXPHOS pathway in prostate cancer, ranging from transcriptional regulation, metabolic regulation to genetic regulation. Moreover, we provided a comprehensive update of the current status of OXPHOS inhibitors for prostate cancer therapy. A challenge of developing OXPHOS inhibitors is to selectively target cancer mitochondria and spare normal counterparts, which is also discussed.
Insights
Prostate cancer cells increase oxidative phosphorylation (OXPHOS), unlike other cancers. Targeting this mitochondrial activity offers new therapeutic strategies for advanced prostate cancer.
Area of Science:
- Oncology
- Cancer Metabolism
- Mitochondrial Biology
Background:
- Tumor development involves metabolic adaptations alongside genetic mutations.
- The Warburg effect (glycolysis dominance) is common, but not universal in cancers.
- Prostate cancer uniquely exhibits increased oxidative phosphorylation (OXPHOS) compared to normal tissue.
Purpose of the Study:
- To review key regulators of OXPHOS in prostate cancer.
- To update the status of OXPHOS inhibitors for prostate cancer therapy.
- To discuss challenges in selectively targeting cancer mitochondria.
Main Methods:
- Literature review of transcriptional, metabolic, and genetic regulation of OXPHOS.
- Analysis of current therapeutic strategies involving OXPHOS inhibitors.
- Discussion of challenges in selective mitochondrial targeting.
Main Results:
- Prostate cancer cells sustain elevated OXPHOS due to citrate diversion for secretion.
- Key regulators of OXPHOS in prostate cancer have been identified.
- Various OXPHOS inhibitors are under investigation for prostate cancer treatment.
Conclusions:
- Increased OXPHOS in prostate cancer presents a unique therapeutic vulnerability.
- Targeting OXPHOS and mitochondrial function offers promising avenues for prostate cancer treatment.
- Developing selective OXPHOS inhibitors remains a critical challenge for clinical application.
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