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Mechanism of coralyne-mediated DNA photo-nicking process
Birija Sankar Patro1, Rahul Bhattacharyya2, Pooja Gupta1
1Bio-Organic Division, Bhabha Atomic Research Centre, Mumbai 400085, India; Homi Bhabha National Institute, Training School Complex, Anushakti Nagar, Mumbai 400094, India.
Abstract:
Previously, we reported that coralyne and UVA combination sensitized a wide range of human carcinoma cells regardless of their p53 status. The coralyne induced photosensitization of cancer cells may be clinically attractive, as mutation in the p53 gene is prevalent in many types of tumors. Coralyne mediated photosensitization of cancer cells is attributable to its ability to cause extensive DNA single strand breaks (SSB). However, the precise mechanism of coralyne induced DNA photo-damage is not yet known. The present study was aimed to understand the hitherto unknown mechanism of the coralyne-induced DNA photo-cleavage process. To this end, we compared the DNA photo-nicking properties of berberine, jatrorrhizine and coralyne, and deciphered involvement of the photochemical processes in the photo-nuclease action of coralyne using absorption and electron spin resonance spectroscopy, high performance liquid chromatography and mass spectroscopy (MS) techniques in conjunction with relevant in vitro studies with plasmid DNA. In association with UVA, coralyne, but not berberine and jatrorrhizine induced significant nicking of plasmid DNA via an O2-independent photo-chemical process. The Job's plot of our spectrophotometric data suggested that one coralyne molecule remains intercalated with two DNA base pairs (i. e., 1:2) and starts forming aggregates beyond this molar ratio. The DNA photo-nicking by the combination of coralyne and UVA (designated as CUVA) was primarily caused by the coralyne aggregates without any significant contribution from the DNA-intercalated coralyne monomer.
Insights
Coralyne and UVA light induce DNA damage in cancer cells through aggregate formation, not intercalation. This photosensitization mechanism offers potential clinical applications for treating p53-mutated tumors.
Area of Science:
- Biochemistry
- Photochemistry
- Molecular Biology
Background:
- Coralyne plus UVA light sensitizes human carcinoma cells, potentially bypassing p53 mutations common in tumors.
- Coralyne-induced photosensitization causes DNA single-strand breaks (SSB), but the exact mechanism remains unclear.
Purpose of the Study:
- To elucidate the mechanism behind coralyne-induced DNA photo-cleavage.
- To compare the DNA photo-nicking abilities of coralyne, berberine, and jatrorrhizine.
Main Methods:
- Spectroscopic analyses (absorption, electron spin resonance)
- High-performance liquid chromatography (HPLC)
- Mass spectrometry (MS)
- In vitro plasmid DNA studies
Main Results:
- Coralyne, unlike berberine and jatrorrhizine, induced significant DNA nicking with UVA via an O2-independent photochemical process.
- Spectrophotometric data indicated coralyne intercalates DNA at a 1:2 ratio (coralyne:base pairs) and forms aggregates at higher concentrations.
- DNA photo-nicking by coralyne-UVA (CUVA) primarily resulted from coralyne aggregates, not intercalated monomers.
Conclusions:
- Coralyne-induced DNA photo-damage is mediated by aggregate formation, not monomer intercalation.
- The O2-independent photochemical mechanism of coralyne aggregates offers a novel approach for cancer therapy.
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