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Ojo, B. A.

Publications and source records attributed to Ojo, B. A..

3 recordsLinked to original sources

FOXP3-engineered regulatory T cells restore intestinal barrier integrity in Crohn's disease enteroids via PDGF-AA

Epithelial regeneration and barrier integrity are impaired in inflammatory bowel diseases, including Crohns disease (CD), yet current therapies largely target immune inflammation without directly promoting mucosal repair. While regulatory T cells are classically immunomodulatory, their capacity to directly support human intestinal stem cells (ISCs) and barrier function remains unclear. In this study, we tested the hypothesis that FOXP3-expressing regulatory T cells--engineered CD4LVFOXP3 and thymic-derived Treg (tTreg)--directly support human ISC maintenance and restore epithelial barrier function independent of their immunomodulatory function. Using CD patient ISCs-derived enteroids that display disease-associated damage, we established co-culture with FOXP3-engineered Treg cell-CD4LVFOXP3 or thymic-derived Treg (tTreg). The presence of either CD4LVFOXP3 or tTreg cells enhanced enteroid growth, improved epithelial barrier function, and restored apical-basal polarity of ISCs, indicating reparative capacity. Conversely, activated conventional CD4+ T cells reduced barrier function and abrogated apical-basal polarity. Integrating secretome profiling with ligand add-back and receptor or ligand blockade, we identify the PDGF-AA-PDGFR axis as a key regulator of Treg-mediated intestinal epithelial barrier integrity, but dispensable for Treg suppressive capacity. Collectively, our data delineate a direct, human tissue-intrinsic role of FOXP3-driven Treg in the interaction with ISCs via PDGF-AA-PDGFR, enhancing epithelial barrier function and positioning CD4LVFOXP3 as a treatment approach coupling immunoregulation with epithelial repair. One Sentence SummaryRegulatory T cells improve the intestinal epithelial barrier function, primarily, through the PDGF-AA-PDGFR axis

immunology↗

Epithelial stem cell-derived chemokines track clinical remission in inflammatory bowel disease in a disease-specific manner

Background and AimsStem cell-derived organoids are promising platforms for therapeutic screening in inflammatory bowel disease (IBD), but identifying functional organoid readouts with translational utility is challenging. Colon epithelial organoids from patients with ulcerative colitis (UC) overexpress chemokines CXCL1, CXCL11, CCL2, and CCL28, yet whether these inflammatory signatures correlate with disease activity and treatment response is unknown. This short report investigates whether organoid-retained chemokines correlate with disease activity and therapeutic outcomes. MethodsWe interrogated three bulk and two single-cell transcriptomic datasets from IBD clinical trials encompassing anti-TNF and anti-integrin therapies to determine whether epithelial chemokines retained in UC organoids track clinical response and distinguish treatment responders from non-responders to biologic therapy across multiple IBD patient cohorts. ResultsIn bulk transcriptomic data, CXCL1, CXCL11, and CCL2 were elevated in active UC and normalized only in patients achieving clinical remission, independent of therapy class, with persistent chemokine overexpression in non-responders. Single-cell analysis demonstrated widespread chemokine overexpression in UC epithelial clusters, with consistent normalization of CXCL1, CXCL11, and CCL28 in LGR5-positive stem compartment of patients who achieved clinical remission, but not in non-responders. In Crohns disease, the resolution of these epithelial chemokines was not associated with clinical response. ConclusionsEpithelial chemokines, particularly CXCL1, CXCL11, and CCL28, track clinical remission in UC and represent candidate biomarkers and functional endpoints for epithelial-directed therapeutic strategies using stem cell-derived UC organoid models.

cell biology↗

Patient-derived colon epithelial organoids reveal lipid-related metabolic dysfunction in pediatric ulcerative colitis

Background & AimsUlcerative colitis (UC) is associated with epithelial metabolic derangements which exacerbate gut inflammation. Patient-derived organoids recapitulate complexities of the parent tissue in health and disease; however, whether colon organoids (colonoids) model metabolic impairments in the pediatric UC epithelium is unclear. This study determined the functional metabolic differences in the colon epithelia using epithelial colonoids from pediatric patients. MethodsWe developed biopsy-derived colonoids from pediatric patients with endoscopically active UC, inactive UC, and those without endoscopic or histologic evidence of colon inflammation (non-IBD controls). We extensively interrogated metabolic dysregulation through extracellular flux analyses and tested potential therapies that recapitulate or ameliorate such metabolic dysfunction. ResultsEpithelial colonoids from active UC patients exhibit elevated oxygen consumption and proton leak supported by enhanced glycolytic capacity and dysregulated lipid metabolism. The hypermetabolic features in active UC colonoids were associated with increased cellular stress and chemokine secretion, specifically during differentiation. Transcriptomic and pathway analyses indicated a role for PPAR- in lipid-induced hypermetabolism in active UC colonoids, which was validated by PPAR- activation in non-IBD colonoids. Accordingly, limiting neutral lipid accumulation in active UC colonoids through pharmacological inhibition of PPAR- induced a metabolic shift towards glucose consumption, suppressed hypermetabolism and chemokine secretion, and improved cellular stress markers. Control and inactive UC colonoids had similar metabolic and transcriptomic profiles. ConclusionsOur pediatric colonoids revealed significant lipid-related metabolic dysregulation in the pediatric UC epithelium that may be alleviated by PPAR- inhibition. This study supports the advancement of colonoids as a preclinical human model for testing epithelial-directed therapies against such metabolic dysfunction. What You Need to KnowO_ST_ABSBackground and ContextC_ST_ABSColon mucosa healing in pediatric UC requires reinstating normal epithelial function but a lack of human preclinical models of the diseased epithelium hinders the development of epithelial-directed interventions. New FindingsUsing colon biopsy-derived epithelial organoids, samples from pediatric patients with active UC show hyperactive metabolic function largely driven by enhanced lipid metabolism. Pharmacologic inhibition of lipid metabolism alleviates metabolic dysfunction, cellular stress, and chemokine production. LimitationsThough our epithelial colon organoids from active UC patients show targetable metabolic and molecular features from non-IBD controls, they were cultured under sterile conditions, which may not fully capture any potential real-time contributions of the complex inflammatory milieu typically present in the disease. Clinical Research RelevanceCurrent therapies for pediatric UC mainly target the immune system despite the need for epithelial healing to sustain remission. We identified a pharmacologic target that regulates epithelial metabolism and can be developed for epithelial-directed therapy in UC. Basic Research RelevancePediatric UC patient tissue adult stem cell-derived colon epithelial organoids retain disease-associated metabolic pathology and can serve as preclinical human models of disease. Excess reliance on lipids as an energy source leads to oxidative and inflammatory dysfunction in pediatric UC colon organoids. Preprint: This manuscript is currently on bioRxiv. doi: https://doi.org/10.1101/2024.08.22.609271 Lay Summary: Using patient tissue-derived colon epithelial organoids, the investigators identified epithelial metabolic dysfunction and inflammation in pediatric ulcerative colitis that can be alleviated by PPAR-a inhibition.

physiology↗