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Biology subjects

Przybilla, M.

Publications and source records attributed to Przybilla, M..

2 recordsLinked to original sources

Human 3D epithelioids enable continuous long-term clonal evolution studies across multiple epithelial tissues

Modeling human epithelia in vitro remains challenging because current systems do not fully preserve the combination of architecture, heterogeneity, clonal composition, and long-term dynamics shown in vivo. While 3D approaches such as organoids and organotypic cultures capture important aspects of lineage differentiation and niche signaling, they often lose stable organization over time, limiting studies of long-lasting processes such as clonal evolution and cell competition. Here, we present human epithelioids as continuous long-term, 3D epithelial cultures efficiently derived from eight adult human epithelia, including trachea, skin, buccal mucosa, esophagus, blader, urethra, submandibular gland and endometrium. Using immunostaining, electron microscopy, single-cell RNA sequencing, functional assays and somatic mutation analyses, we deeply characterized human epithelioids and confirmed that they recapitulate native architecture and cell diversity, sustain regenerative capacity, and preserve donor-specific mutational landscapes, establishing a robust and versatile platform for longitudinal interrogation of clonal evolution, tissue dynamics and responses to clinically relevant perturbations, including radiotherapy and chemotherapy, over extended timescales.

cancer biology↗

Tissue-specific mutagenesis from endogenous guanine damageis suppressed by Polκ and DNA repair

Knowledge of mutational patterns has expanded significantly, but a persistent challenge is to link these complex patterns to the underlying molecular mechanism or source of DNA damage, especially when that damage is endogenous and not driven by environmental mutagens. Technological advances now allow us to catalogue mutation across tissues or even closely related cell types, but the results are largely descriptive until we identify the endogenous sources of mutation and how they differ across tissues. Here, we combine mouse genetics, advanced sequencing, biochemistry and mass spectrometry to provide a detailed mechanistic understanding of endogenous mutagenesis. We reveal that endogenous guanine adducts are significant drivers of tissue-specific mutagenesis, while the interwoven actions of DNA polymerase Pol{kappa} and DNA repair mechanisms are pivotal in mitigating mutagenesis. For the first time, we use untargeted DNA adductomics to characterize new sources of endogenous DNA damage. Our novel approach to understanding endogenous mutational landscapes reveals previously unseen mutational processes and points to vast potential for new discoveries.

molecular biology↗