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Biology subjects

Schott, E.

Publications and source records attributed to Schott, E..

3 recordsLinked to original sources

CD163 protects against pulmonary injury and inflammation induced by acute O3 exposure

Ozone (O3)-driven pulmonary inflammation is partly regulated by damage associated molecular patterns (DAMPs) binding to scavenging receptors (SRs). However, how SRs and DAMPs regulate O3-induced pulmonary inflammation remains incompletely understood. CD163 is a SR responsible for clearing cell free hemoglobin (CFH), a DAMP which accumulates during acute pulmonary injury and is associated with worsening respiratory outcomes. We hypothesized that increased CD163 is necessary for reducing CFH levels and resolving O3-induced pulmonary injury. To test this hypothesis, we defined CD163 and CFH responses to O3 exposure in C57BL/6N (WT) and CD163 deficient (Cd163-/-) mice, as well as in human bronchoalveolar lavage fluid (BALF). In WT mice, lung Cd163 expression was significantly increased by O3 during peak inflammation and declined 24 hours post exposure. Human exposure studies revealed a diversity of Cd163 expression and a reduction of CFH following O3 exposure, suggesting regulation of this pathway in humans. When compared to WT mice, Cd163-/- mice had augmented O3-induced pulmonary injury, inflammation, and oxidative stress. Further, the antioxidant EUK-134 did not reduce O3-induced pulmonary oxidative stress in Cd163-/- mice, suggesting a role for CD163 in the pulmonary response to oxidative insults. Furthermore, compared to WT controls, Cd163-/- mice receiving an oropharyngeal aspiration of CFH had a significant increase in airspace inflammation. Combined, these findings suggest that CD163 mediated clearance of CFH is involved in resolving O3-induced pulmonary injury, inflammation, and oxidative stress. New & NoteworthyOzone (O3) is known to induce damage associated molecular patterns (DAMPs) which drive lung inflammation. The scavenging receptor, CD163, binds and clears the DAMP cell free hemoglobin (CFH), which accumulates during sterile lung injury. Our findings indicate that O3 exposure alters CD163 expression in the lung and that mice lacking Cd163 expression have more lung inflammation. Our data indicate that CD163 serves a protective role in response to acute O3 exposure perhaps through CFH clearance.

pharmacology and toxicology↗

Heterogeneous causes of acute respiratory distress syndrome correlate with distinct peripheral polyunsaturated fatty acid metabolites

Acute Respiratory Distress Syndrome (ARDS), a heterogeneous syndrome of hypoxic respiratory failure secondary to dysregulated pulmonary inflammation, is caused by diverse insults. Because of this heterogeneity, mechanisms and treatments are difficult to study. As a treatment, n-3 polyunsaturated fatty acid (PUFA) supplementation has had mixed results. PUFAs and downstream oxylipins are important to pulmonary inflammation but are not well defined in ARDS. We hypothesized that differences in fatty acid metabolism, as measured by levels of n-3 and n-6 PUFAs and oxylipins, are associated with differences in ARDS outcomes, ARDS causes, and inflammation. To test this, PUFAs/oxylipins were measured by LC MS/MS in plasma samples from 90 patients with ARDS. Inflammatory cytokines (IL-6, IL-8) were measured by ELISA. Multivariate linear regressions modeled the relationship between PUFAs/oxylipins, inflammation, and ARDS mortality, severity and cause. Multiple n-3 and n-6 PUFA derived oxylipins were decreased in severe ARDS. We did not detect differences in PUFAs/oxylipins by mortality. PUFAs/oxylipins varied by cause of ARDS, especially between patients with sepsis and those with trauma. Furthermore, specific oxylipins were associated with IL-6 and IL-8. Based on our identification of oxylipins that vary by disease severity and injury, these metabolites should be considered as potential biomarkers and mechanisms of lung repair biomarkers. Furthermore, differences in PUFAs did not directly correlate with changes in oxylipins, suggesting differences in lipid metabolism by etiology of injury. Further consideration of differences in lipid metabolism in ARDS could identify potential subgroups that could benefit from n-3 PUFA supplementation or other therapies.

molecular biology↗

Infections in the Atlantic Blue Crab Callinectes sapidus (Rathbun, 1896) in coastal Adriatic and Aegean sea, and Atlantic Iberian coast

In the Mediterranean Sea, the abundance of the invasive portunid crab, Callinectes sapidus, has dramatically increased in recent years. This raises concerns about damage to ecosystems, but also offers opportunities for exploitation of a new fishery. Newly invasive species may escape from pathogens in their native range, may introduce new pathogens, or can become host to endemic pathogens. Understanding these factors is important for predicting or managing natural resources in the invaded range. This study investigated the prevalence of two pathogens common in C. sapidus in its home range of North America: the reovirus CsRV1 and the protozoan parasite Hematodinium perezi. In crabs collected from Aegean, Adriatic, and Atlantic waters, the CsRV1 virus was not detected. In contrast, the parasite H. perezi was found in crabs from all areas except the Aegean Sea. Sequence analysis of the H. perezi ITS1 gene indicated that the strains observed are most related to genotypes already described in Europe and the Mediterranean, and not to strains from the Americas or Asia. The arrival of new species and new potential pathogens is ongoing through transfer of ballast water to the Atlantic and Mediterranean. Although systems are in place to exchange or inactivate ballast water, it is advisable to continue and expand surveillance for pathogens in introduced species, to inform management of movement of these species between regions.

ecology↗