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Solarczyk, K.

Publications and source records attributed to Solarczyk, K..

2 recordsLinked to original sources

Androgen receptor inhibition extends PARP inhibitor activity in prostate cancer models beyond BRCA mutations and defects in homologous recombination repair.

Recent phase 3 clinical trial readouts have shown benefit of the combination of poly(ADP-ribose) polymerase inhibitors (PARPi) with androgen receptor (AR) pathway inhibitors (ARPi) in metastatic, castration-resistant prostate cancer (mCRPC). While benefit was particularly evident in patients with tumours harbouring mutations in homologous recombination repair (HRR) genes, improved outcomes were also observed in patients with no such defined alterations in their cancers. Although there is literature linking AR activity with DNA repair pathways, the basis of the interaction between the AR and PARP is unclear. Here, we show that benefit of the combination of ARPi and PARPi in prostate cancer in vitro and in vivo models with no HRR mutations requires ARPi-responsive cells and a PARPi with PARP1-trapping activity, and does not involve an effect of PARPi treatment in modulating the transcriptional role of the AR. Combination benefit is driven by an increase in DNA damage in the form of DNA double-strand breaks and micronuclei formation, which is not due to a direct control of HRR gene transcription by the AR. In addition, we uncover a novel role of PARP1 in modulating AR recruitment to chromatin in the presence of DNA damage. These data shed new light on the interplay between PARP1 and the AR in dealing with genotoxic insults and provide a mechanism of action consistent with the observed clinical benefit of the combination of PARPi and ARPi in patients with prostate cancer. Statement of significanceCombination of androgen receptor pathway inhibitors and PARP inhibitors has shown efficacy in prostate cancer. We provide a mechanistic explanation through increased DNA damage accumulation observed in combination vs single-agent treatments.

cancer biology↗

Direct, sensitive and specific detection of individual single- or double-strand DNA breaks by fluorescence microscopy

We here describe a technique termed STRIDE (SensiTive Recognition of Individual DNA Ends), which enables highly sensitive, specific, direct in situ detection of single- or double-strand DNA breaks (sSTRIDE or dSTRIDE), in nuclei of single cells, using fluorescence microscopy. Sensitivity of STRIDE was tested using specially developed CRISPR/Cas9 DNA damage induction system, capable of inducing small clusters or individual single- or double-strand breaks. STRIDE exhibits significantly higher sensitivity and specificity of detection of DNA breaks than the commonly used TUNEL assay or methods based on monitoring of recruitment of repair proteins or histone modifications at the damage site (e.g. {gamma}H2AX). Even individual genome site-specific DNA double-strand cuts induced by CRISPR/Cas9, as well as individual single-strand DNA scissions induced by the nickase version of Cas9, can be detected by STRIDE and precisely localized within the cell nucleus. We further show that STRIDE can detect low-level spontaneous DNA damage, including age-related DNA lesions, DNA breaks induced by several agents (bleomycin, doxorubicin, topotecan, hydrogen peroxide, UV, photosensitized reactions), and fragmentation of DNA in human spermatozoa. STRIDE methods are potentially useful in studies of mechanisms of DNA damage induction and repair in cell lines and primary cultures, including cells with impaired repair mechanisms.

cell biology↗