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Chalkidi, N.

Publications and source records attributed to Chalkidi, N..

2 recordsLinked to original sources

High-resolution integrative analysis allows characterization and spatial annotation of normal and cancer-associated colon fibroblasts

Fibroblasts represent key regulators of colon homeostasis, and cancer-associated fibroblasts (CAFs) play pivotal roles in colorectal cancer (CRC). Despite their critical influence, a consensus view of adult human colon fibroblast and CRC CAF heterogeneity, spatial organization, and developmental trajectories is currently lacking. Here, we address this gap by performing a comprehensive characterization of colonic fibroblasts and CRC CAFs. Using large-scale integration of single-cell RNA-sequencing datasets from normal colon and CRC we mapped the fibroblast subpopulations. Spatial transcriptomics, immunohistochemistry, and in situ hybridization were used for validation and computational analyses to predict developmental trajectories and transcription factors underlying CAF activation. Subepithelial myofibroblasts (SEMFs), mucosa-associated fibroblasts (MAFs), and submucosa-associated fibroblasts (SAFs) were identified as the main colon fibroblast subtypes, and in mice, further divided into location-based subclusters. We also identified a novel colon fibroblast subset: muscle-embedded interstitial fibroblasts (MIFs). CRCs contained normal fibroblasts as well as four cancer-specific CAF populations: inflammatory CAFs (iCAFs), matrix CAFs (mCAFs), and two precursor CAF (preCAF) subtypes. Our data suggested that iCAFs originate from SEMFs through a preCAF1 intermediate phenotype, while mCAFs derive from SAFs/MIFs via preCAF2s. Transcription factors PRRX1, MAFB, and TWIST1 were uncovered as potential regulators of CAF identity and CTHRC1 was identified as a specific and sensitive pan-CAF marker in CRC. Our study presents a detailed framework for understanding colon fibroblast and CRC CAF heterogeneity. This work lays the groundwork for future research into the roles and potential therapeutic relevance of different CRC CAF subsets.

cancer biology↗

Notch3 regulates pericyte phenotypic plasticity in colorectal cancer

Pericytes undergo phenotypic alterations that influence cancer progression, yet the molecular mechanisms governing these changes remain poorly understood. Here, we investigated the role of Notch3 signaling in pericyte phenotype and functions in colorectal cancer (CRC). Using lineage tracing approaches, we showed that tumor pericytes originate from normal tissue-resident pericytes, which proliferate inside tumors. In vivo genetic manipulation revealed that Notch3 pathway activation promotes pericyte proliferation, while suppressing contractile protein expression, and leads to increased endothelial cell proliferation. In contrast, Notch3 deletion leads to reduced endothelial proliferation and a significant decrease in. This effect is associated with a shift toward a contractile phenotype. Single-cell RNA sequencing analysis uncovered significant pericyte heterogeneity in both mouse colitis-associated cancer and human CRC. It specifically identified functionally distinct subpopulations characterized by differential Notch3 activity, which supported our in vivo and in vitro findings. Our results establish Notch3 as a key regulator of pericyte phenotypic plasticity in CRC and suggest that targeting this pathway could represent a promising strategy for improving therapeutic outcomes through vascular normalization.

cancer biology↗