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Biology subjects

Felten, M.

Publications and source records attributed to Felten, M..

4 recordsLinked to original sources

IGF1R is protective in pneumococcal pneumonia

BackgroundStreptococcus pneumoniae (S.pn) is the most prevalent causal bacterial pathogen in community-acquired pneumonia. Despite appropriate antimicrobial therapy, pneumococcal pneumonia can progress to acute respiratory distress syndrome where actual therapies are mainly supportive, and the discovery of new molecular targets is needed. ObjectiveTo investigate the role of IGF1R (Insulin-like Growth Factor 1 Receptor) in pneumococcal pneumonia. MethodsIgf1r-deficient (UBC-CreERT2; Igf1rfl/fl) and control (Igf1rfl/fl) mice were infected with 5x106 S.pn (PN36) or PBS (sham infected). Mice were sacrificed 48 h after infection. Pulmonary permeability, local inflammatory response, and pulmonary and extra-pulmonary bacterial loads were analyzed. Further, IGF1R protein expression was determined in human lung tissue after S.pn infection and IGF1 and IGF1R levels were determined serum of pneumonia patients. ResultsIn patients and mice infected with S.pn, IGF1 signaling was significantly altered. Igf1r-deficient mice had significantly increased pulmonary permeability after infection with increased pulmonary inflammatory cytokine levels, while inflammatory cell recruitment was not altered compared to infected Igf1rfl/fl control animals. Pulmonary bacterial load was significantly higher in Igf1r-deficient mice, and histological analysis confirmed increased alveolar edema and necrosis compared to infected Igf1rfl/fl control and sham-infected mice. Ex vivo, S.pn caused a decrease in IGF1R protein expression in human lung tissue. ConclusionOur results demonstrate a significant regulation of IGF1R in ex-vivo infected human lung tissue and in serum of S.pn pneumonia patients. Moreover, pneumonia severity was increased in Igf1r-deficient mice upon S.pn infection compared to Igf1rfl/fl control mice, suggesting that IGF1R plays a protective role in pneumococcal pneumonia.

molecular biology↗

Overventilation-induced airspace acidification increases susceptibility to Pseudomonas pneumonia

Ventilator-associated pneumonia (VAP) is the most frequent nosocomial infection in critically ill patients. Local pH variations affect bacterial growth. Whether airway acidification contributes to the pathogenesis and pathophysiology of Pseudomonas aeruginosa (PA)-induced VAP is currently unknown. This study was undertaken to investigate the role and mechanisms of airspace acidification by mechanical ventilation (MV) in PA-induced VAP. C57BL/6J mice were subjected to high (HVt: 34 mL/kg) or low (LVt: 9 mL/kg) tidal volume MV for 4 h. PA was instilled via the tracheal tube, and animals were allowed to recover from sedation and breathe spontaneously for 24 h following extubation. Fluorescence microscopy was applied to determine alveolar pH in ex vivo perfused and ventilated murine lungs. Bacterial growth and adhesion on cyclically stretched A549 and human alveolar epithelial cells was examined. Upon PA infection, HVt mice showed increased alveolo-capillary permeability, elevated lung and blood leukocyte counts, and higher bacterial load in lungs and extrapulmonary organs as compared to LVt controls. HVt MV induced acidification of alveolar lining fluid (ALF) in lungs and decreased pulmonary expression of Na+/H+ exchanger 1 (NHE1). Inhibition of NHE1 enhanced PA growth in vitro on alveolar epithelial cells and increased pulmonary bacterial loads in LVt-MV mice in vivo. In a novel murine VAP model, key characteristics of PA-VAP were replicated. HVt MV induced mild VILI with acidification of airway lining fluid, increasing susceptibility to PA pneumonia. NHE1 was identified as critical factor for MV-induced airspace acidification, and thus as potential target to combat PA-VAP.

immunology↗

Substrate profiling of the metalloproteinase ovastacin - Implications for its physiological function in mammalian fertilization

The metalloproteinase ovastacin is released by the mammalian egg upon fertilization and cleaves a distinct peptide bond in zona pellucida protein 2, a component of the enveloping extracellular matrix. This limited proteolysis causes zona pellucida hardening, abolishes sperm binding and thereby regulates fertility. Accordingly, this process is tightly controlled by the plasma protein fetuin-B, an endogenous competitive inhibitor. At present, little is known about how the cleavage characteristics of ovastacin differ from closely related proteases. Physiological implications of ovastacin beyond ZP2 cleavage are still obscure. In this study, we employed N-terminal amine isotopic labeling of substrates (N-TAILS) contained in the secretome of mouse embryonic fibroblasts to elucidate the substrate specificity and the precise cleavage site specificity. Furthermore, we were able to unravel the physicochemical properties governing enzyme-substrate interactions. Eventually, we identified several potential physiological substrates with significance for mammalian fertilization. These data suggest that ovastacin might regulate sperm-oocyte interaction and fertility beyond zona pellucida hardening. Graphical Abstract O_FIG O_LINKSMALLFIG WIDTH=177 HEIGHT=200 SRC="FIGDIR/small/519252v1_ufig1.gif" ALT="Figure 1"> View larger version (90K): org.highwire.dtl.DTLVardef@1b27cddorg.highwire.dtl.DTLVardef@1239a3eorg.highwire.dtl.DTLVardef@638c37org.highwire.dtl.DTLVardef@18a960f_HPS_FORMAT_FIGEXP M_FIG C_FIG

biochemistry↗

Inter-layer and inter-subject variability of circadian gene expression in human skin

The skin is the largest human organ with a circadian clock that regulates its function. Although circadian rhythms in specific functions are known, rhythms in the proximal clock output, gene expression, in human skin have not been thoroughly explored. This work reports circadian gene expression in two skin layers, epidermis and dermis, in a cohort of young, healthy adults, who maintained natural, regular sleep schedules. 10% of the expressed genes showed rhythms at the population level, of which only a third differed between the two layers. Broadly, expression magnitudes of circadian genes were consistent across subjects in each layer. Amplitude and phases of circadian gene expression, however, varied more across subjects than layers, with amplitude being more variable than phases. Expression amplitudes in the epidermis were larger and more subject-variable, while they were smaller and more consistent in the dermis. Core clock gene expression was similar across layers at the population-level, but were heterogeneous in the their variability across subjects. We used this data to identify small sets of biomarkers for internal clock phase in each layer, which consisted of layer-specific non-core clock genes. This work provides a valuable resource to advance our understanding of human skin to realize the potential of circadian medicine as well as a novel methodology to quantify sources of variability in human circadian rhythms.

bioinformatics↗