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Biology subjects

Statkiewicz, M.

Publications and source records attributed to Statkiewicz, M..

2 recordsLinked to original sources

Mature tumoroids recapitulate clinically relevant drug response through extended 3D culture in PDAC

BackgroundDrug responses in pancreatic ductal adenocarcinoma (PDAC) vary sharply across in vitro culture formats, but most 2D-3D comparisons conflate microenvironmental cues with time-dependent cellular adaptation. As a result, conventional assays frequently overestimate drug efficacy and poorly reflect clinical pharmacology. Main findingsWe profiled MiaPaCa-2, PANC-1, and CFPAC-1 grown in an extracellular-matrix (ECM) hydrogel for 1-12 days, defining extended 3D cultures ([&ge;]10 days) as mature tumoroids, and quantified 72 h drug responses to a multi-class oncology panel using growth-rate (GR) metrics to normalize for proliferation across formats and durations. Prolonged 3D pre-culture induced broad tolerance, with typical 10-100x reductions in sensitivity to standards of care (5-fluorouracil, SN38, oxaliplatin, gemcitabine, paclitaxel), following a reproducible susceptibility hierarchy (MiaPaCa-2 > PANC-1 > CFPAC-1) after GR correction. In mature tumoroids, GR values closely approximated clinically observed plasma exposures (e.g., within <4x for 5-FU and <0.5x for gemcitabine), whereas 2D and short-term organoid assays markedly underestimated resistance, often by >100x, thereby overstating drug activity. Notably, CFPAC-1 exhibited increased sensitivity to SN38 and trametinib under mature-organoid conditions, demonstrating that microenvironmental conditioning can invert responses for selected mechanisms. Transcriptomic profiling revealed coordinated up-regulation of multiple ABC transporters with extended 3D residence, tracking resistance phenotypes across lines and implicating transporter-linked tolerance programs. SignificanceTogether, these data identify time-in-3D and the emergence of mature tumoroids as dominant, previously under-controlled determinants of PDAC pharmacology that both induce tolerance and unmask context-dependent vulnerabilities. We propose incorporating both short-term and mature-tumoroid screening arms into preclinical workflows, reporting pre-culture duration alongside GR-normalized effect sizes, and leveraging transporter-informed biomarkers to guide regimen prioritization and sequencing. This framework enhances physiological relevance, reproducibility, and translational fidelity in PDAC drug discovery.

cancer biology↗

3D culture of pancreatic cancer cells in vitro recapitulates an aberrant mitochondrial oxidative phosphorylation genotype observed in vivo

The treatment of many aggressive cancers remains a significant unmet medical need. An aberrant dependence of tumors on mitochondrial oxidative phosphorylation pathways has been well characterized in mediating the progression of pancreatic cancers, as well as some other malignancies. However, the discovery and development of new therapeutic strategies targeting or manipulating this pathway in pancreatic tumors has been relatively slow when compared with other cancers, limiting the current options for treating patients. One key technical challenge in discovering new therapies has been the limited ability of cancer cell lines when grown in 2D conditions to recapitulate the mitochondrial oxidative phosphorylation pathways in vitro that have been observed in vivo. In part, this is because 2D cultures fail to mimic the extracellular 3D tumoral environment. More generally, the translation of data based on 2D pancreatic cancer cell culture systems have also been constraining options for discovering new therapies. Conversely, 3D cultures can provide an improved technology platform in which pathologically relevant pathways in tumors can be recapitulated and analyzed in vitro. In this study, we have demonstrated in 3D cultures the reconstruction of the mitochondrial oxidative phosphorylation genotype in vitro, which more closely resembles that observed in vivo. Our study highlights the value of using transcriptomic readouts as a method to demonstrate the relevance and utility of 3D preclinical models in vitro, when grown in a more physiological extracellular environment. This key technological advance can now better enable the discovery and subsequent development of new therapeutic strategies targeting disease-relevant pathways found in pancreatic and other tumors.

cancer biology↗