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Biology subjects

Geissler, A.

Publications and source records attributed to Geissler, A..

2 recordsLinked to original sources

Atheroma plaque microenvironment stimulates kynurenine production by macrophages to induce endothelial adhesion molecules in the context of atherogenesis

Cardiovascular diseases, including atherosclerosis, are major causes of morbidity and mortality worldwide. Here, we investigate the role of the kynurenine pathway (KP) in macrophages in the context of atheroma plaque microenvironment and its impact on atherogenesis. Using an in vitro model of primary human macrophages, we observed that exposure to plaque homogenates induces a marked increase in the early steps of the KP which impacts on kynurenine production. This was confirmed by immunostaining on human plaque of carotid arteries. Further investigation into the underlying molecular mechanisms revealed that LXR signaling contributes to this plaque microenvironment-induced KP activation. We showed that kynurenine released from macrophages affected endothelial cells, leading to increased expression of ICAM-1 and VCAM-1 in an AhR-dependent manner. Consistently with the proatherogenic effects, in a cohort of atherosclerotic patients, we observed higher levels of plasma kynurenine in patients with lower extremity arterial disease. In line with the results of in vitro investigations, the plasma kynurenine levels were associated plaque oxysterol content. Using a multiple logistic regression model, we showed that plasma kynurenine was independently associated with lower extremity arterial disease in atherosclerotic patients. Altogether, our data indicate that the activation of KP in macrophages in the context of atheroma plaque is partially mediated by LXR axis and leads to the release of kynurenine. This, in turn, contributes to the exacerbation of both local and peripheral atherosclerosis particularly through the activation of endothelial cells.

immunology↗

The impact of PrsA over-expression on the Bacillus subtilis transcriptome during fed-batch fermentation of alpha-amylase production

The production of the alpha-amylase (AMY) enzyme in Bacillus subtilis at a high rate leads to the accumulation of unfolded AMY, which causes secretion stress. The over-expression of the PrsA chaperone aids the enzyme folding and reduces stress. To identify affected pathways and potential mechanisms involved in the reduced growth, we analyzed the transcriptomic differences during fed-batch fermentation between a PrsA over-expressing strain and a control in a time-series RNA-seq experiment. We observe transcription in 542 previously un-annotated regions, of which 234 had significant changes in expression levels between the samples. Moreover, 1,791 protein-coding sequences, 80 non-coding genes, and 20 riboswitches overlapping UTR regions of coding genes had significant changes in expression. Via gene-set over-representation analysis of the differentially expressed genes, we identified putatively regulated biological processes; overall the analysis suggests that the PrsA over-expression affects ATP biosynthesis activity, amino acid metabolism, and cell wall stability. The investigation of the protein interaction network points to a potential impact on cell motility signaling. We discuss the impact of these highlighted mechanisms for reducing secretion stress or detrimental aspects of PrsA over-expression during AMY production.

microbiology↗