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Simaomicin α, a polycyclic xanthone, induces G₁ arrest with suppression of retinoblastoma protein phosphorylation
Yukio Koizumi1, Hiroshi Tomoda, Ayako Kumagai
1Department of Biochemistry, Akita University School of Medicine, 1-1-1 Hondo, Akita, Japan.
Abstract:
Recent progress in cancer biology research has shown that abnormal proliferation in tumor cells can be attributed to aberrations in cell cycle regulation, especially in G₁ phase. During the course of searching for microbial metabolites that affect cell cycle distribution, we have found that simaomicin α, a polycyclic xanthone antibiotic, arrests the cell cycle at G₁ phase. Treatment of T-cell leukemia Jurkat cells with 3 nM simaomicin α induced an increase in the number of cells in G₁ and a decrease in those in G₂–M phase. Cell cycle aberrations induced by simaomicin α were also detected in colon adenocarcinoma HCT15 cells. Simaomicin α had antiproliferative activities in various tumor cell lines with 50% inhibitory concentration values in the range of 0.3–19 nM. Furthermore, simaomicin α induced an increase in cellular caspase-3 activity and DNA fragmentation, indicating that simaomicin α promotes apoptosis. The retinoblastoma protein phosphorylation status of simaomicin α-treated cell lysate was lower than that of control cells, suggesting that the target molecule of simaomicin α is in a pathway upstream of retinoblastoma protein phosphorylation. In the course of evaluating polycyclic xanthone antibiotics structurally related to simaomicin α, we also found that cervinomycin A1 stimulated accumulation of treated cells in G₁ phase. These results indicate that the polycyclic xanthones, including simaomicin α and cervinomycin A1, may be candidate cancer chemotherapeutic agents.
Insights
Simaomicin α, a microbial metabolite, halts cancer cell division at the G₁ phase, inducing apoptosis. This polycyclic xanthone shows promise as a potential cancer chemotherapeutic agent.
Area of Science:
- Cancer Biology
- Pharmacology
- Microbiology
Background:
- Abnormal cell proliferation in tumors is linked to cell cycle regulation errors, particularly in the G₁ phase.
- Microbial metabolites are explored for their potential to modulate cell cycle distribution.
Purpose of the Study:
- To identify microbial metabolites that affect cell cycle distribution.
- To investigate the effects of simaomicin α on cancer cell cycle progression and apoptosis.
Main Methods:
- Treatment of Jurkat and HCT15 cancer cell lines with simaomicin α.
- Cell cycle analysis using flow cytometry.
- Assay of caspase-3 activity and DNA fragmentation.
- Western blot analysis of retinoblastoma protein phosphorylation.
Main Results:
- Simaomicin α (3 nM) arrested Jurkat cells in the G₁ phase and decreased cells in G₂–M phase.
- Antiproliferative activity of simaomicin α observed across various tumor cell lines (IC₅₀: 0.3–19 nM).
- Simaomicin α induced apoptosis, evidenced by increased caspase-3 activity and DNA fragmentation.
- Reduced retinoblastoma protein phosphorylation suggests simaomicin α acts upstream of this pathway.
Conclusions:
- Simaomicin α effectively arrests cancer cells in the G₁ phase and induces apoptosis.
- Polycyclic xanthones, including simaomicin α and cervinomycin A1, demonstrate potential as cancer chemotherapeutic agents.
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