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Updated: Jun 13, 2026

Live-Cell Imaging of Transcriptional Activity at DNA Double-Strand Breaks
Published on: September 20, 2021
Transcription inhibition by platinum-DNA cross-links in live mammalian cells
Wee Han Ang1, MyatNoeZin Myint, Stephen J Lippard
1Department of Chemistry, Massachusetts Institute of Technology, Cambridge, Massachusetts 02139, USA.
Abstract:
We have investigated the processing of site-specific Pt-DNA cross-links in live mammalian cells to enhance our understanding of the mechanism of action of platinum-based anticancer drugs. The activity of platinum drugs against cancer is mediated by a combination of processes including cell entry, drug activation, DNA-binding, and transcription inhibition. These drugs bind nuclear DNA to form Pt-DNA cross-links, which arrest key cellular functions, including transcription, and trigger a variety of responses, such as repair. Mechanistic investigations into the processing of specific Pt-DNA cross-links are critical for understanding the effects of platinum-DNA damage, but conventional in vitro techniques do not adequately account for the complex and intricate environment within a live cell. With this limitation in mind, we developed a strategy to study platinum cross-links on plasmid DNAs transfected into live mammalian cells based on luciferase reporter vectors containing defined platinum-DNA lesions that are either globally or site-specifically incorporated. Using cells with either competent or deficient nucleotide excision repair systems, we demonstrate that Pt-DNA cross-links impede transcription by blocking passage of the RNA polymerase complex and that nucleotide excision repair can remove the block and restore transcription. Results are presented for approximately 3800-base pair plasmids that are either globally platinated or carry a single 1,2-d(GpG) or 1,3-d(GpTpG) intrastrand cross-link formed by either cis-{Pt(NH(3))(2)}(2+) or cis-{Pt(R,R-dach)}(2+), where {Pt(NH(3))(2)}(2+) is the platinum unit conveyed by cisplatin and carboplatin and R,R-dach is the oxaliplatin ligand, R,R-1,2-diaminocyclohexane.
Insights
Platinum-DNA cross-links from anticancer drugs block transcription in mammalian cells. Nucleotide excision repair removes these platinum-DNA adducts, restoring transcription, crucial for understanding drug mechanisms.
Area of Science:
- Biochemistry
- Molecular Biology
- Cancer Research
Background:
- Platinum-based drugs are vital anticancer agents.
- Their efficacy relies on DNA cross-linking and transcription inhibition.
- Understanding platinum-DNA adduct processing in vivo is critical.
Purpose of the Study:
- To investigate the processing of site-specific platinum-DNA cross-links in live mammalian cells.
- To elucidate the role of nucleotide excision repair in mitigating platinum-induced transcription blockade.
Main Methods:
- Developed a live-cell assay using luciferase reporter plasmids with defined platinum-DNA lesions.
- Introduced globally or site-specifically platinated plasmids into mammalian cells.
- Utilized cells with competent or deficient nucleotide excision repair (NER) systems.
Main Results:
- Platinum-DNA cross-links impede RNA polymerase progression, inhibiting transcription.
- Nucleotide excision repair (NER) effectively removes platinum-DNA adducts.
- NER-proficient cells showed restored transcription after platinum-DNA damage, unlike NER-deficient cells.
Conclusions:
- Platinum-DNA cross-links are processed by nucleotide excision repair (NER) in live cells.
- NER is essential for restoring transcription disrupted by platinum-based anticancer drugs.
- This study provides in vivo mechanistic insights into platinum-drug action and resistance.
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