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A microdosing approach for characterizing formation and repair of carboplatin–DNA monoadducts and chemoresistance

Paul T. Henderson, Tao Li, Miaoling He, Hongyong Zhang, Michael Malfatti, David R. Gandara, Peter Grimminger, Kathleen D. Danenberg, Laurel Beckett, Ralph W. de Vere White, Kenneth W. Turteltaub, Chong-Xian Pan

International Journal of Cancer December 2, 2010 DOI: 10.1002/ijc.25814 via OpenAlex

Summary

AI-generated from the abstract

Platinum-based drugs like carboplatin kill cancer cells by forming DNA adducts, but measuring these adducts in tumors has been technically difficult. Using ultrasensitive accelerator mass spectrometry, researchers detected carboplatin-DNA monoadducts—precursors to toxic crosslinks—at extremely low levels in six cancer cell lines. The most drug-resistant cells had the fewest monoadducts at all time points over 24 hours. Importantly, microdoses (1/100th the therapeutic concentration) produced nearly identical adduct formation and repair kinetics as full doses, suggesting microdosing could predict treatment effects. Intracellular inactivation and efficient DNA repair, particularly nucleotide excision repair, significantly suppressed monoadduct formation in resistant cells, pointing to mechanisms of chemoresistance.

Study at a glance

Characteristics Proof-of-concept study Peer reviewed
Population Six cancer cell lines
Intervention Carboplatin
Dose 1/100th the pharmacologically effective concentration (microdose)
Duration 24 hours
Keywords Carboplatin Adduct Dna repair Dna damage Intracellular
Citations 37
Key finding The most resistant cancer cells had the lowest carboplatin-DNA monoadduct levels over 24 hours, and microdosing reproduced the adduct kinetics of therapeutic doses, supporting its use to study chemoresistance.

Abstract

Formation and repair of platinum (Pt)-induced DNA adducts is a critical step in Pt drug-mediated cytotoxicity. Measurement of Pt-DNA adduct kinetics in tumors may be useful for better understanding chemoresistance and therapeutic response. However, this concept has yet to be rigorously tested because of technical challenges in measuring the adducts at low concentrations and consistent access to sufficient tumor biopsy material. Ultrasensitive accelerator mass spectrometry was used to detect [(14)C]carboplatin-DNA monoadducts at the attomole level, which are the precursors to Pt-DNA crosslink formation, in six cancer cell lines as a proof-of-concept. The most resistant cells had the lowest monoadduct levels at all time points over 24 hr. [(14)C]Carboplatin "microdoses" (1/100th the pharmacologically effective concentration) had nearly identical adduct formation and repair kinetics compared to therapeutically relevant doses, suggesting that the microdosing approach can potentially be used to determine the pharmacological effects of therapeutic treatment. Some of the possible chemoresistance mechanisms were also studied, such as drug uptake/efflux, intracellular inactivation and DNA repair in selected cell lines. Intracellular inactivation and efficient DNA repair each contributed significantly to the suppression of DNA monoadduct formation in the most resistant cell line compared to the most sensitive cell line studied (p < 0.001). Nucleotide excision repair (NER)-deficient and -proficient cells showed substantial differences in carboplatin monoadduct concentrations over 24 hr that likely contributed to chemoresistance. The data support the utility of carboplatin microdosing as a translatable approach for defining carboplatin-DNA monoadduct formation and repair, possibly by NER, which may be useful for characterizing chemoresistance in vivo.

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