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Biology subjects

Wachter, U.

Publications and source records attributed to Wachter, U..

2 recordsLinked to original sources

Pathophysiological response in experimental trauma-related acute kidney injury

BackgroundTrauma and shock often severely affect the kidneys. This can lead to trauma-related acute kidney injury (TRAKI), which significantly increases the risk of adverse outcomes. MethodsTo study the pathophysiology of TRAKI, we developed a murine model of combined blunt thoracic trauma and pressure-controlled hemorrhage that induces mild transient TRAKI. ResultsThe mice showed early and transient increased plasma creatinine, urea, NGAL, and urine albumin, resolving 5 days after TRAKI induction. Despite normal kidney morphology, significant damage to proximal tubular cells and a loss of the brush border was observed. This included kidney stress responses, e.g., with induced heme oxygenase-1 expression in tubules. The upregulation of inflammatory mediators and kidney injury markers was followed by elevated leukocyte numbers, mainly consisting of monocytes/macrophages. Proteomic analyses revealed a distinct time course of intrarenal processes after trauma. 3D x-ray-based whole-organ histology by contrast-enhanced microcomputed tomography showed significant impairment of capillary blood flow, especially during the first day post THS, which was partly resolved by day 5. ConclusionsOur novel model of murine TRAKI has revealed previously unknown aspects of the complex temporal pathophysiological response of the kidney along the nephron after trauma and hemorrhage, which may provide mechanistic starting points for future therapeutic approaches.

pathology↗

Bayesian 13C-metabolic flux analysis of parallel tracer experiments in granulocytes: A directional shift within the non-oxidative pentose phosphate pathway supports phagocytosis

The pentose phosphate pathway (PPP) plays a key role in the cellular regulation of immune cell function; however, little is known about the interplay of metabolic adjustments in granulocytes, especially regarding the non-oxidative PPP. For the determination of metabolic mechanisms within glucose metabolism, we propose a novel Bayesian 13C-Metabolic flux analysis based on ex-vivo parallel tracer experiments with [1,2-13C]glucose, [U-13C]glucose, and [4,5,6-13C]glucose and gas chromatography-mass spectrometry labeling measurements of metabolic fragments including sugar phosphates. With this approach we obtained precise flux distributions and their joint confidence regions, which showed that phagocytic stimulation reversed the direction of non-oxidative PPP net fluxes from ribose-5-phosphate biosynthesis towards glycolytic pathways. This process was closely associated with the up-regulation of the oxidative PPP to promote the oxidative burst. The estimated fluxes showed strong pairwise inter-relations forming a single line in several cases. This behavior could be explained with a three-dimensional permissible space derived from stoichiometric-flux-constraint analysis and enabled a principal component analysis detecting only three distinct axes of coordinated flux changes that were sufficient to explain all flux observations.

systems biology↗