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Ozdemir, M.

Publications and source records attributed to Ozdemir, M..

2 recordsLinked to original sources

Pulmonary fibroblast activation during Aspergillus fumigatus infection enhances lung defense via immunomodulation and tissue remodeling

Aspergillus fumigatus is the etiologic agent of invasive aspergillosis, a life- threatening fungal pneumonia that is initiated by the inhalation of conidia (spores) into the lung. If the conidia are not cleared, they secrete large quantities of hydrolytic enzymes and toxins as they grow, resulting in extensive damage to pulmonary tissue. Stromal fibroblasts are central responders to tissue damage in many organs, but their functional response to pulmonary injury caused by A. fumigatus has not been explored. In this study, we employed cell lineage tracing, targeted cell ablation, and single-cell RNA sequencing to monitor the dynamics of fibroblast behavior upon exposure to A. fumigatus in both immunocompetent and immunosuppressed hosts. The results demonstrate that a subset of pulmonary fibroblasts becomes activated in an immunocompetent host in response to a challenge with A. fumigatus conidia, acquiring a gene expression program reflecting the acquisition of new immunomodulatory properties as well as enhanced extracellular matrix (ECM)-secreting ability. Remarkably, through targeted ablation of fibroblasts that express the profibrotic activation marker periostin, we demonstrate that the progression of an invasive A. fumigatus infection in an immunosuppressed host is accelerated by the absence of periostin lineage cells and is accompanied by severe alveolar hemorrhage and angioinvasion. These findings uncover a novel protective role for fibroblasts in limiting the severity of A. fumigatus-induced pulmonary injury and emphasize the importance of the pulmonary stroma in host defense against this invasive fungal infection.

cell biology↗

Increased EZH2 function in regulatory T cells promotes their capacity to suppress autoimmunity by driving effector differentiation prior to activation

The immunosuppressive function of regulatory T (Treg) cells is essential for maintaining immune homeostasis. Enhancer of zeste homolog 2 (EZH2), a histone H3 lysine 27 (H3K27) methyltransferase, plays a key role in maintaining Treg cell function upon CD28 co-stimulation, and Ezh2 deletion in Treg cells causes autoimmunity. Here we assessed whether increased EZH2 activity in Treg cells would improve Treg cell function. Using an Ezh2 gain-of-function mutation, Ezh2Y641F, we found that Treg cells expressing Ezh2Y641F displayed an increased effector Treg phenotype and were poised for improved homing to organ tissues. Expression of Ezh2Y641F in Treg cells led to more rapid remission from autoimmunity. H3K27me3 profiling and transcriptomic analysis revealed a redistribution of H3K27me3, which prompted a gene expression profile in naive Ezh2Y641F Treg cells that recapitulated aspects of CD28-activated Ezh2WT Treg cells. Altogether, increased EZH2 activity promotes the differentiation of effector Treg cells that can better suppress autoimmunity. HighlightsO_LIEZH2 function promotes effector differentiation of Treg cells. C_LIO_LIEZH2 function promotes Treg cell migration to organ tissues. C_LIO_LIEZH2 function in Treg cells improves remission from autoimmunity. C_LIO_LIEZH2 function poises naive Treg cells to adopt a CD28-activated phenotype. C_LI

immunology↗