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Read, S.

Publications and source records attributed to Read, S..

2 recordsLinked to original sources

Single-cell multi-omics maps clonal IEL expansion and epithelial remodelling in refractory coeliac disease

Background Refractory coeliac disease type 1 (RCD1) lacks defining molecular markers, and the immune and epithelial mechanisms sustaining intestinal injury remain poorly understood. Objective To define the clonal immune and epithelial states that distinguish RCD1 from active coeliac disease (ACD) and determine their spatial organisation in the duodenal mucosa. Design We integrated single-cell RNA sequencing, CITE-seq surface proteomics and paired T-cell receptor sequencing of duodenal immune and epithelial compartments from Healthy controls (n = 6), ACD (n = 7), RCD1 (n = 9) and RCD2 (n = 2), with spatial transcriptomics in a subset of biopsies. Results RCD1 showed widespread TCR{beta} and TCR{gamma}{delta} clonal expansion across multiple IEL states, extending beyond previously defined mutation-bearing aberrant clones. Distinct IEL populations converged on a shared programme of adaptive persistence, innate-like signalling, metabolic fitness and cytoskeletal remodelling; GZMK expression marked both clonally expanded and non-clonal disease-associated states. In parallel, RCD1 epithelium showed loss of mature absorptive cell states and expansion of stress-associated, immune-interacting and regenerative programmes. Transit-amplifying cells acquired differentiation and tissue-remodelling signatures, while enteroendocrine cells expanded and developed a sensory-neurosecretory programme involving TRPA1, TRPV1, vesicle trafficking and NEUROD1 regulon activity. Spatial transcriptomics localised regenerative and enteroendocrine-associated epithelial programmes adjacent to immune-visible epithelial regions and KLRK1/GZMK-expressing IEL-rich niches in refractory tissue. Conclusion RCD1 represents a distinct mucosal state characterised by coordinated clonal IEL adaptation and epithelial remodelling, rather than simple amplification of ACD, providing a cellular framework for persistent tissue injury and disease stratification.

immunology↗

The thermotolerant Arabian killifish, Aphanius dispar, as a novel infection model for human fungal pathogens

Candida albicans: a fungal pathogen, can cause superficial and fatal infections in humans. An important virulence factor in C. albicans dissemination is the transformation from yeast to an invasive hyphal form, which is favoured at human body temperature. Zebrafish, a useful model for studying C. albicans infections, cannot survive at 37{degrees}C. Arabian killifish, Aphanius dispar, an emerging teleost model can tolerate temperatures up to 40 {degrees}C for up to 12 days (independent feeding time) allowing for longer analysis compared to zebrafish. This study introduces A. dispar as a thermo-relevant and a more accurate reporter of the virulence mechanisms relevant to C. albicans as a human pathogen. Using A. dispar, we tested virulence at human skin (30 {degrees}C), body temperature (37 {degrees}C) and a high fever condition (40{degrees}C). Infection by C. albicans at 37{degrees}C and 40{degrees}C significantly increased virulence, reduced survival of AKF embryos and formed invasive hyphal network compared to 30 {degrees}C. Two mutant strains of C. albicans. pmr1{Delta} (with aberrant cell surface glycans) exhibited reduced virulence at 37{degrees}C, whereas rsr1{Delta} (lacking a cell polarity marker) showed less virulence at 30 {degrees}C. Additionally, anti-fungal treatment rescued AKF survival in a dose-dependent manner, indicating AKFs potential for in vivo drug testing. Our data indicates the quantitative and qualitative importance of examining virulence traits at physiologically relevant temperatures and demonstrates an equivalence to findings for systemic infection derived in mouse models. The A. dispar embryo therefore provides an excellent in vivo model system for assessing virulence, drug-testing, and real-time imaging of host-pathogen interactions. Significance StatementThe virulence of many pathogens is dependent on host temperature. We demonstrate that the A. dispar embryo provides an excellent new thermo-relevant alternative to zebrafish and mouse models, which have limitations in terms of the range of temperatures that can be assessed in real-time. In this study, we have assessed C. albicans temperature-based virulence, focusing on human body and human skin temperatures (37, 40 and 30 {degrees}C, respectively) by examining different genetic backgrounds of C. albicans strains. The results indicate different C. albicans strains with genetic background show varied virulence depending on temperature indicating importance of examination of virulence mechanisms at physiological temperatures.

animal behavior and cognition↗