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Biology subjects

Loube, J.

Publications and source records attributed to Loube, J..

3 recordsLinked to original sources

Infection-specific long-chain fatty acid metabolism as a broad anti-enterovirus target

Enteroviruses are arguably the most numerous group of viruses infecting humans. While most enterovirus infections are benign and self-resolving, their sheer number inevitably increases the chances of multiple complications. The diversity of enteroviruses means that the development of vaccines is only economically feasible against a select few, and no direct-acting or host-targeted anti-virals are approved to treat enteroviral infections, largely due to the rapid development of resistance against all experimental drugs. Here, we explored a universal property of enterovirus infection - a massive upregulation of phospholipid synthesis as a target for anti-viral interventions. The increased phospholipid synthesis consumes endogenously- and exogenously-derived long-chain fatty acids (LCFA). We demonstrate that polyunsaturated LCFAs can have a broad anti-enteroviral effect, affecting multiple steps of the virus life cycle. The anti-viral activity of LCFAs did not strictly depend on the degree of unsaturation or their capacity to induce lipid peroxidation but significantly correlated with their conformation. This suggests that their incorporation into the phospholipid molecules makes the replication organelle membranes incapable of properly accommodating viral replication machinery. Accordingly, the inhibition of neutral lipid synthesis promoted LCFAs retargeting to the membranes in infected cells and increased their anti-viral potency. We show that this approach is effective against diverse enteroviruses in different cell types, including differentiated primary cells, and that attempts to establish viruses resistant to such treatment were unsuccessful.

microbiology↗

Primary lung fibroblasts respond to IL-33, IL-13, and IL-17A by secreting factors that activate macrophages

There is mounting evidence that macrophage-fibroblast communication is key to the understanding of disease processes. To gain insights into these relationships in the context of progressive lung damage, we measured changes in protein and RNA expression of pulmonary macrophages and fibroblasts upon exposure to IL-33, IL-13, and IL-17A, which are three cytokines often implicated in pathways driving chronic lung remodeling and severe disease like emphysema. Applying an in vitro culture system, bulk-RNA sequencing, and protein assays, it was determined that IL-33, IL-13, and IL-17A used alone or in combination activated mouse alveolar macrophages to a modest extent with IL-13 inducing the most vigorous response. While lung fibroblasts also responded modestly to single and paired treatments with IL-33, IL-13, and IL-17A, simultaneous exposure to all three cytokines induced significant activation that was characterized by expression of genes associated with immune cell trafficking and activation, tissue remodeling, and maintenance of the extracellular matrix. Importantly, factors secreted by triple-treated lung fibroblasts resulted in the activation of macrophages in vitro. In addition to being the first report describing the cooperative interactions of IL-33, IL-13, and IL-17A on lung fibroblasts, these findings provide additional evidence that fibroblast-macrophage communication is a key component to repair and remodeling in the lung, as well as mechanisms that drive progression of emphysema.

immunology↗

Knockout of E-cadherin in adult mouse epithelium results in emphysema and airway disease

Chronic obstructive pulmonary disease (COPD) is a devastating lung disease, characterized by a progressive decline in lung function, alveolar loss (emphysema), and airflow limitation due to excessive mucus secretion (chronic bronchitis), that can occur even after the injurious agent is removed. It is slated to rise to the 3rd leading cause of death due to chronic disease by 2030 globally, and the 4th leading cause of death due to chronic disease in the USA. While there is substantial evidence indicating loss of E-cadherin in the lung epithelium of patients with COPD, it is not known if this is causal to the disease. We investigated if loss of E-cadherin can result in lung disease using in both in vitro models of primary, differentiated human cells and in mouse models. Using a cell type-specific promoter using Cre/LoxP mice system to knock-out E- cadherin in ciliated and alveolar epithelial cell (Type 1 and Type 2) populations in adult mouse models, we determined that loss of E-cadherin caused airspace enlargement, as well as increased airway hyperresponsiveness indicating that it does have a causative role in causing COPD. Strategies to upregulate CDH1 (encodes for E-cadherin) in CHBEs and cigarette-smoke injured NHBEs can rescue the dysfunctional epithelium.

cell biology↗