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Biology subjects

Kass Gergi, S.

Publications and source records attributed to Kass Gergi, S..

4 recordsLinked to original sources

A Bioactive Phospholipid Promotes Rapid Progenitor Lung Progenitor Activation via AP-1

Upon injury to the distal lung, alveolar type 2 cells (AT2s) must make a discrete switch from surfactant factories to stem cells capable of regeneration, which involves both proliferation and differentiation into oxygen-exchanging alveolar type 1 (AT1) cells. However, the discrete signals and molecular pathways facilitating this fundamental switch in AT2 functionality are uncertain. Here we demonstrate that the bioactive lipid lysophosphatidic acid (LPA), typically associated with driving fibrosis, is an extremely efficient inducer of this state change in comparison to previously implicated signals IL-1{beta} and p53 stabilization. We observed endogenous production and accumulation of LPA in influenza-injured murine lungs, creating a microenvironment that facilitates AT2 progenitor switching. Multiple transcriptomic approaches reveal elevation of Fosl1 and Jun, core members of the Activator Protein 1 (AP-1) transcription factor family, in response to LPA. Using novel genetic models combined with influenza injury, we demonstrate that AP-1 activity in AT2s is necessary for effective alveolar regeneration at both the cellular and physiologic levels. These findings unveil a critical relationship between paracrine LPA and cell-intrinsic AP-1 in facilitating effective lung alveolar regeneration. HighlightsO_LILPA facilitates progenitor switching in lung regeneration via initiation of a discrete transcriptomic state C_LIO_LILPA promotes AT2 state switching via Jun (AP-1) C_LIO_LIImpaired AP-1 signaling significantly restricts recovery from influenza infection C_LI

cell biology↗

Influenza-induced tuft cell expansion alters ILC-mediated inflammation

Tuft cells act as sentinels that amplify type 2 inflammation primarily by activating type 2 innate lymphoid cells (ILC2s). Although normally absent from the distal lung, ectopic tuft cells form after severe lung injury including influenza infection in mice. Here, we investigated the function of these ectopic tuft cells in shaping innate immunity following influenza injury. We observed that IFN{gamma} restrains tuft cell differentiation, whereas ILC2s drive tuft cell expansion, establishing a reciprocal regulatory axis. Tuft cell-deficient mice exhibited reduced eosinophilic inflammation and expansion of ILC1s and ILC3s after influenza injury resolution. Single-cell RNA-seq of influenza infected whole lung revealed transcriptional signatures consistent with type 1 pathway activation, type 2 suppression and oxidative stress. Following influenza injury and subsequent Alternaria alternata challenge, tuft cell-deficient mice also showed neutrophilic and ILC3 expansion. Together, these data identify a distal-airway tuft-cell-ILC2 circuit that helps maintain a balanced inflammatory environment in response to viral injury and aeroallergens.

molecular biology↗

Dysplastic Epithelial Repair Propagates Chronic Pathology Through the Paracrine Transformation of Pulmonary Fibroblasts

Severe lung injury promotes the ectopic accumulation of basal cells in the alveoli and the presence of these dysplastic epithelial cells are strongly associated with regions of pulmonary fibrosis (PF) in diseased lungs. Recent studies have identified a unique subset of "inflammatory" fibroblasts expressing pro-inflammatory genes, especially cytokines involved in monocyte recruitment, that are also enriched in disease and thought to contribute to the onset and progression of PF. Here we show that these two injury-induced cell types are intricately connected, in that dysplastic basal cells generate diffusible signals to robustly induce the inflammatory phenotype in pulmonary fibroblasts. Capitalizing on transcriptomic analysis, we identify the enriched inflammatory signaling pathways in treated fibroblasts and specifically demonstrate that IL-1 secreted by dysplastic basal cells is responsible for this fibroblastic transformation. IL-1 neutralization in vivo is sufficient to significantly reduce the inflammatory fibroblast burden in regions of alveolar bronchiolization, and the resolution of inflammatory fibroblasts in turn reduces CCR2+ immune cell recruitment to these areas. These results suggest dysplastic basal cells play an indirect role in chronic inflammation and fibrotic remodeling through the induction of a proinflammatory fibroblast phenotype and subsequent recruitment of immune cells, establishing a chronic wound healing microenvironment that prolongs localized pathologic remodeling.

cell biology↗

Disruption of Immune Responses By Type I Diabetes Exacerbates SARS-CoV-2 Mediated Lung Injury

COVID-19 commonly presents as pneumonia, with those most severely affected progressing to respiratory failure. Patient responses to SARS-CoV-2 infection are varied, with comorbidities acting as major contributors to varied outcomes. Focusing on one such major comorbidity, we assessed whether pharmacological induction of Type I Diabetes Mellitus (T1DM) would increase the severity of lung injury in a murine model of COVID-19 pneumonia utilizing wild type mice infected with mouse-adapted SARS-CoV-2. Hyperglycemic mice exhibited increased weight loss and reduced blood oxygen saturation in comparison to their euglycemic counterparts, suggesting that these animals indeed experienced more severe lung injury. Transcriptomic analysis revealed a significant impairment of the adaptive immune response in the lungs of diabetic mice compared to those of control. In order to expand the limited options available for tissue analysis due to biosafety restrictions, we also employed a novel technique to digest highly fixed tissue into a single cell suspension, which allowed for flow cytometric analysis as well as single cell RNA sequencing. Flow immunophenotyping and scRNA-Seq confirmed impaired recruitment of T cells into the lungs of T1DM animals. Additionally, scRNA-Seq revealed a distinct, highly inflammatory macrophage profile in the diabetic cohort that correlates with the more severe infection these mice experienced clinically, allowing insight into a possible mechanism for this phenomenon. Recognizing the near certainty that respiratory viruses will continue to present significant public health concerns for the foreseeable future, our study provides key insights into how T1DM results in a much more severe infection and identifies possible targets to ameliorate comorbidity-associated severe disease. NEW AND NOTEWORTHYWe define the exacerbating effects of Type I Diabetes Mellitus (T1DM) on COVID-19 pneumonia severity in mice. Hyperglycemic mice experienced increased weight loss and reduced oxygen saturation. Transcriptomic analysis revealed impaired immune responses in diabetic mice, while flow cytometry and single-cell RNA sequencing confirmed reduced T cell recruitment and an inflammatory macrophage profile. Additionally, we introduced a novel technique for tissue analysis, enabling flow cytometric analysis and single-cell RNA sequencing on highly fixed tissue samples.

immunology↗