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Günther, M.

Publications and source records attributed to Günther, M..

2 recordsLinked to original sources

Quantitative analysis of MHC class II peptide exchange reveals pivotal role of peptide association rate

MHC-II presents antigenic peptides to T helper cells, thus shaping adaptive immune responses. Peptide loading of MHC-II in endosomes is shaped by the susceptibility of the peptide-MHC-II complex to dissociation by the catalyst HLA-DM. For a given MHC-II allotype, experimental data reveal an enormous range of HLA-DM susceptibilities of different peptides - more than five orders of magnitude. To understand the underlying mechanisms, we develop a coarse-grained kinetic model and confront it with experimental data. The model explains the observed variation of HLA-DM susceptibility with the peptide-MHC-II binding energy by an allosteric competition mechanism. Paradoxically, however, certain peptides are resistant to dissociation by HLA-DM regardless of their binding energy. Our model predicts that this resistance is linked with fast peptide association to MHC-II in the absence of HLA-DM. In sum, our data-based theoretical analysis identifies two distinct molecular mechanisms that shape antigen presentation by MHC-II.

systems biology↗

Post-stroke dendritic arbor regrowth - a cortical repair process requiring the actin nucleator Cobl

Ischemic stroke is a major cause of death and long-term disability. We demonstrate that middle cerebral artery occlusion in mice leads to a strong decline in dendritic arborization of penumbral neurons. These defects were subsequently repaired by an ipsilateral recovery process requiring the actin nucleator Cobl. Ischemic stroke and excitotoxicity, caused by calpain-mediated proteolysis, significantly reduced Cobl levels. In an apparently unique manner among excitotoxicity-affected proteins, this Cobl decline was rapidly restored by increased mRNA expression and Cobl then played a pivotal role in post-stroke dendritic arbor repair in peri-infarct areas. In Cobl KO mice, the dendritic repair window determined to span day 2-4 post-stroke in WT strikingly passed without any dendritic regrowth. Instead, Cobl KO penumbral neurons of the primary motor cortex continued to show the dendritic impairments caused by stroke. Our results thereby highlight a powerful post-stroke recovery process and identified causal molecular mechanisms critical during post-stroke repair.

neuroscience↗