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Biology subjects

Brügger, M. D.

Publications and source records attributed to Brügger, M. D..

3 recordsLinked to original sources

APOA1 links a late fetal epithelial program to colonic maturation and injury responses

Developmental programs establish tissue identity and organization, but how their reactivation contributes to adult tissue responses remains poorly understood. Here, we identify a functional contribution of apolipoprotein A-I (APOA1), which marks a late fetal colonic epithelial state that reappears after injury. Spatial and temporal profiling localized Apoa1 transcription predominantly to epithelial cells at the tips of developing proximal colonic folds. Apoa1 loss delayed fold maturation and altered the abundance and composition of developing enteroendocrine populations, linking this apolipoprotein to mucosal architecture and epithelial differentiation. APOA1 protein closely interacted with WNT5A during development and injury, while Apoa1 deficiency increased Wnt5a expression and altered its epithelial protein distribution. Following colonic injury, single-cell and spatial profiling identified genotype-associated transcriptional changes involving stress responses, barrier and immune functions, and metabolism, with a shared component across males and females. These changes accompanied reduced enteroendocrine representation and increased representation of inflammation-associated macrophages. Finally, regional and compartmental expression analyses, together with hindgut explant perturbation, identified HOXB7 transcription factor as a regulator of developmental Apoa1 expression. Together, these findings establish functional relevance for a component of a reactivated late fetal epithelial program, connecting APOA1 to colonic maturation and the epithelial and inflammatory organization of injured tissue.

molecular biology↗

An oncoembryology approach uncovers SoxC-driven regulation of colon development and cancer

Reactivated embryonic programs are associated with cancer progression, yet their role and regulatory mechanisms remain poorly understood. In this study, we introduce oncoembryology, an approach that systematically compares embryonic and cancerous tissues to identify shared molecular programs and assess their functional relevance in disease. Applying this strategy to colorectal cancer, we identified SoxC transcription factors (Sox4, Sox11, Sox12) as critical regulators of both embryonic development and tumorigenesis. SoxC transcription factors regulate diverse downstream targets, including Tead2, Mdk, and Klf4, thereby regulating crucial steps of colon development. Abrogating SoxC function in murine models reduced tumor growth and prevented liver metastasis. Concordantly, a SoxC-driven oncoembryonic gene signature correlated with poor survival in colorectal cancer patients, underscoring the therapeutic potential of targeting SoxC-regulated pathways in cancer treatment.

cancer biology↗

Hepatic iNKT cells facilitate colorectal cancer metastasis by inducing a fibrotic niche in the liver

The liver is an important metastatic organ that contains many innate immune cells, yet little is known about their role in anti-metastatic defense. We investigated how invariant natural killer T (iNKT) cells influence colorectal cancer-derived liver metastasis using different models in immunocompetent mice. We found that hepatic iNKT cells promote metastasis by creating a supportive niche for disseminated cancer cells. Mechanistically, iNKT cells respond to disseminating cancer cells by producing the fibrogenic cytokines IL-4 and IL-13 in a TCR-independent manner. Selective abrogation of IL-4 and IL-13 sensing in hepatic stellate cells prevented their transdifferentiation into extracellular matrix-producing myofibroblasts, which hindered metastatic outgrowth of disseminated cancer cells. This study highlights a novel tumor-promoting axis driven by iNKT cells in the initial stages of metastasis.

immunology↗