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Updated: Jan 30, 2026

Isolation of Cancer Stem Cells From Human Prostate Cancer Samples
Published on: March 14, 2014
Alternol eliminates excessive ATP production by disturbing Krebs cycle in prostate cancer
Changlin Li1,2, Chenchen He2,3, Ying Xu2
1Institute of Precision Medicine, Jining Medical University, Jining, China.
Background:
Alternol is a natural compound isolated from fermentation products of a mutant fungus. Our previous studies demonstrated that Alternol specifically kills cancer cells but spares benign cells.
Methods:
To investigate the mechanism underlying alternol-induced cancer cell-specific killing effect, we took a comprehensive strategy to identify Alternol's protein targets in prostate cancer cells, including PC-3, C4-2, and 22RV1, plus benign BPH1 cell lines. Major experimental techniques included biotin-streptavidin pulldown assay coupled with mass-spectrometry, in vitro enzyme activity assay for Krebs cycle enzymes and gas chromatography-mass spectrometry (GC-MS) for metabolomic analysis.
Results:
Among 14 verified protein targets, four were Krebs cycle enzymes, fumarate hydratase (FH), malate dehydrogenase-2 (MDH2), dihydrolipoamide acetyltransferase (DLAT) in pyruvate dehydrogenase complex (PDHC) and dihydrolipoamide S-succinyltransferase (DLST) in a-ketoglutarate dehydrogenase complex (KGDHC). Functional assays revealed that PDHC and KGDHC activities at the basal level were significantly higher in prostate cancer cells compared to benign prostate BPH1 cells, while alternol treatment reduced their activities in cancer cells close to the levels in BPH1 cells. Although FH and MDH2 activities were comparable among prostate cancer and benign cell lines at the basal level, Alternol treatment largely increased their activities in cancer cells. Metabolomic analysis revealed that Alternol treatment remarkably reduced the levels of malic acid, fumaric acid, and isocitric acid and mitochondrial respiration in prostate cancer cells. Alternol also drastically reduced mitochondrial respiration and ATP production in PC-3 cells in vitro or in xenograft tissues but not in BPH1 cells or host liver tissues.
Conclusions:
Alternol interacts with multiple Krebs cycle enzymes, resulting in reduced mitochondrial respiration and ATP production in prostate cancer cells and xenograft tissues, providing a novel therapeutic strategy for prostate cancer treatment.
Insights
Alternol, a natural compound, targets Krebs cycle enzymes to reduce energy production in prostate cancer cells. This discovery offers a new therapeutic approach for prostate cancer, sparing healthy cells.
Area of Science:
- Biochemistry
- Oncology
- Molecular Biology
Background:
- Alternol, a natural compound, selectively eliminates cancer cells while sparing normal cells.
- Previous research indicates Alternol's potential in cancer therapy.
Purpose of the Study:
- To elucidate the mechanism of Alternol's cancer cell-specific killing effect.
- To identify Alternol's protein targets in prostate cancer cells.
Main Methods:
- Utilized biotin-streptavidin pulldown assay with mass spectrometry.
- Performed in vitro enzyme activity assays for Krebs cycle enzymes.
- Conducted gas chromatography-mass spectrometry (GC-MS) for metabolomic analysis.
Main Results:
- Identified four Krebs cycle enzymes (FH, MDH2, DLAT, DLST) as Alternol targets.
- Alternol reduced pyruvate dehydrogenase complex (PDHC) and a-ketoglutarate dehydrogenase complex (KGDHC) activity in cancer cells.
- Alternol decreased malic acid, fumaric acid, and isocitric acid levels, reducing mitochondrial respiration and ATP production in prostate cancer cells and xenografts.
Conclusions:
- Alternol interacts with multiple Krebs cycle enzymes.
- Alternol inhibits mitochondrial respiration and ATP production in prostate cancer cells.
- Alternol presents a novel therapeutic strategy for prostate cancer treatment.
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