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Kersey, J. L.

Publications and source records attributed to Kersey, J. L..

2 recordsLinked to original sources

PARP1 catalytic domain mutations drive high-level resistance to saruparib while preserving DNA damage response vulnerabilities

Clinical poly (ADP)-ribose polymerase (PARP) inhibitors (PARPi) are limited by toxicities associated with inhibition of multiple PARP family proteins and acquired resistance. As PARP1-specific inhibitors, like saruparib (AZD5305), move toward standard-of-care status for BRCA and HR-deficient cancers replacing less specific PARPi, defining mechanisms of intrinsic and acquired resistance is essential for developing effective treatment strategies. Here, we established 5 saruparib-resistant (SR) cell lines from BRCA1-deficient MDA-MB-436 triple negative breast cancer (TNBC) cells using a selection strategy of high-level dosing consistent with clinical exposure, yielding models that are >1,000-fold resistant to saruparib. Whole genome sequencing identified PARP1 catalytic domain mutations in all SR cell lines, and in vitro reconstitution of these PARP1 mutants confirmed them as drivers of saruparib resistance, in contrast to HR restoration as observed in the case of less-selective PARPi. PARP1 mutations also induce altered saruparib-dependent PARP1 trapping and PARylation inhibition. While these mutations render cells highly resistant to saruparib, differential sensitivity to other PARPi was observed and SR cell lines retain, and in some cases, increase, sensitivity to alternative clinical PARPi and DNA damage response (DDR)-targeted therapeutics. Our findings demonstrate that high-intensity selection pressure favors target-site mutation over pathway restoration as a primary escape mechanism from PARP1-selective inhibition. This study provides a first-in-class characterization of saruparib resistance and maps a clear therapeutic path forward. By identifying these specific PARP1 mutations and their collateral DDR vulnerabilities, we provide the molecular framework necessary to monitor and treat patients who progress on next-generation PARP1-selective inhibitors.

cancer biology↗

Establishment and Characterization of a New Immortalized Human Adenomyosis Epithelial-Like Cell Line, tAEC21

Adenomyosis occurs when endometrial glands and stroma grow within the uterine myometrium. Adenomyosis, as a clinically impactful disease, causes significant pelvic pain and heavy menstrual bleeding. Adenomyosis remains understudied due to the paucity of translational research tools and model systems. This study aimed to create a telomerase-transformed epithelial-like cell line derived from the eutopic endometrium of a subject with focal adenomyosis. De-identified endometrium was processed via mechanical and enzymatic digestion. Epithelial and stromal populations were separated via selective adhesion, followed by fluorescence-activated cell sorting with an epithelial cellular adhesion molecule (EpCAM). EpCAM+ cells were efficiently immortalized with the human telomerase reverse transcriptase gene. Analyses confirmed that the cells were human, without mycoplasma contamination, and exhibited a unique 16-marker short tandem repeat profile. Cytogenetic analysis on G-banded metaphase spreads indicated polyploidy with multiple chromosomal rearrangements. The line, designated as tAEC21, expressed epithelial markers cytokeratin-5 and N-cadherin but not stromal marker CD10. Cells avidly responded to tumor necrosis factor-alpha stimulation by upregulating interleukin-6, C-X-C motif chemokine ligand 8, C-C motif chemokine ligand 2, and mucin 1 gene expression. In a heterotypic, three-dimensional spheroid model, tAEC21 displayed a biologically relevant pattern by assembling into an epithelial shell around the stromal cell core. In two-dimensional monolayers, tAEC21 cells were negative for estrogen and progesterone receptors, while as 3D spheroids, tAEC21 exhibited strong positivity for estrogen but not progesterone receptors. This new epithelial-like, adenomyosis-derived cell line, tAEC21, will be an impactful research resource.

cell biology↗