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Andrzejczak, A.

Publications and source records attributed to Andrzejczak, A..

2 recordsLinked to original sources

Dynamic translocation of Inside-Out proteins to the cell surface underlies cellular adaptation to cancer-induced stress

Inside-out (I-O) protein display, the non-canonical surface localization of intracellular proteins, represents an underexplored feature of tumor cell biology. Here, we map the molecular landscape and trafficking mechanisms that control the presentation of I-O proteins on cancer cell membranes. Employing APEX2-mediated proximity biotinylation and a custom antibody generation and validation platform, we identified approximately 140 high-confidence I-O proteins, primarily ribosomal, proteasomal, chaperone, and translation factors, notably enriched in protein families associated with stress-response pathways. Validation of 500 antibodies encompassing 40 I-O targets across seven tumor cell lines confirmed selective and robust surface localization, while in vivo imaging in mouse xenografts demonstrated pronounced and tumor-specific antibody accumulation. I-O proteins were absent on PBMCs and in normal tissues, indicating cancer cell selectivity. Functional analyses revealed that I-O protein tethering to the membrane is dependent on heparan sulfate interactions; enzymatic removal of these glycans led to the clearance of I-O proteins from the cell surface. Notably, the removed proteins returned to baseline levels within six hours, indicating a dynamic balance related to ER-Golgi trafficking and cellular stress. Nearly half of these I-O proteins overlapped with known stress granule components; however, stress elements that promote stress granule formation do not similarly affect surface display of I-O proteins. Furthermore, I-O proteins are present on standard cancer cell lines under lower stress levels needed to induce stress granule formation, suggesting parallel yet mechanistically distinct aspects of the stress response. These findings position I-O display as a new paradigm in protein trafficking, different from traditional secretion pathways and closely linked to stress response.

biochemistry↗

A Patient-Derived Scaffold-Based 3D Culture Platform for Head and Neck Cancer: Preserving Tumor Heterogeneity for Personalized Drug Testing

Standard 3-D models for head-and-neck cancer (HNC) often lose stromal partners that influence drug response or never include them. We developed a patient-derived cell culture system that maintains tumor cells, cancer-associated fibroblasts (CAFs), and cells undergoing partial epithelial-to-mesenchymal transition (pEMT) for rapid sensitivity testing. Biopsies from four HNC patients were enzymatically dissociated. CAFs were directly cultured, and their conditioned medium (CAF-CM) was collected. Cryopreserved tumour cell suspensions were later revived, screened in five different growth media in 2-D conditions, and the most heterogeneous cultures were re-embedded in 3-D hydrogels with varied gel mix, medium, and seeding geometry. A perimeter-derived complexity index was used to quantify tumoroid morphology and viability after exposure to cisplatin or the Notch modulators RIN-1 (activator) and FLI-06 (inhibitor), which were assessed by live imaging and WST-8 assays. ECM-2 medium alone produced compact CAF-free spheroids, whereas ECM-2 supplemented with CAF medium generated invasive aggregates that deposited endogenous matrix; Matrigel plus this medium and single-point seeding yielded the highest complexity scores. Two of the three patient tumoroids were cisplatin-sensitive, and all showed significant growth inhibition with the FLI-06 inhibitor, while RIN-1 induced minimal change. The optimised scaffold retains tumour-stroma cross-talk and affords patient-specific drug-response data within days, supporting personalised treatment selection in HNC.

cancer biology↗