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Fielitz, J.

Publications and source records attributed to Fielitz, J..

2 recordsLinked to original sources

Identification of novel human cellular substrates of Staphylococcus aureus serine protease SplB

Staphylococcus aureus colonizes up to one third of the human population yet retains the capacity to cause invasive, life-threatening infections. The growing prevalence of antimicrobial resistance further complicates treatment. A major contributor to the versatility of S. aureus is its broad repertoire of virulence factors, among which secreted proteases facilitate dissemination from colonization sites into deeper tissues. Twelve extracellular proteases are secreted, with the serine protease-like protein (Spl) family (SplA-SplF), encoded within a single operon, accounting for half of them. Despite this prominence, the pathophysiological roles and substrate specificities of the Spl proteases remain poorly understood. Here, we employed a direct protein-protein interaction approach to identify novel SplB substrates in human serum. We demonstrate that SplB cleaves three intermediate filament proteins, namely desmin, vimentin, and nestin, as well as heat shock protein {beta}1 and -enolase, which have not previously been recognized as targets of S. aureus proteases. Moreover, SplB was found to cleave native IgG, a feature otherwise described only for the glutamyl endopeptidase V8. These findings expand the host protein repertoire targeted by SplB and suggest broader roles for Spl proteases in immune evasion and tissue invasion.

immunology↗

Integrated Multi-omic Profiling Reveals Early Regulatory Events in Dexamethasone Muscle Atrophy

Skeletal muscle atrophy and weakness are major contributors to morbidity, prolonged recovery, and long-term disability across a wide range of diseases. Atrophy is caused by breakdown of sarcomeric proteins resulting in loss of muscle mass and strength. Molecular mechanism underlying the onset of muscle atrophy and its progression have been analysed in patients, mice, and cell culture but the complementarity of these model systems remains to be explored. Here, we applied deep-coverage transcriptomic and proteomic profiling to characterize dynamic changes during dexamethasone-induced atrophy in the widely used murine skeletal muscle cell line C2C12. Comparison with published datasets confirmed that muscle differentiation is well recapitulated in C2C12 myotubes. Under dexamethasone treatment, this model was particularly suited to capture early atrophy events. We identified alterations in mitochondrial gene expression and differential alternative splicing events during early-stage myotube atrophy. This dataset complements existing in vivo data and provides novel insights into the regulatory processes during skeletal muscle wasting.

molecular biology↗