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Mayr, J.

Publications and source records attributed to Mayr, J..

2 recordsLinked to original sources

Microbial Priming Enhances TLR7-Driven Myddosome Assembly Dynamics

Cells can modify their future behavior based on prior exposures, a phenomenon known as cellular adaptation. In innate immunity, such adaptive responses are critical for fine-tuning host defense, enabling trained immunity or tolerance. These states have been largely attributed to long-lasting epigenetic or metabolic reprogramming. Whether prior microbial encounters can rapidly lower receptor signaling thresholds to selectively enhance responsiveness of individual innate immune receptors remains unknown. Here, we identify a previously unrecognized, non-genetic form of cellular adaptation. We show that TLR4 activation by LPS, while inducing classical endotoxin tolerance, simultaneously primes macrophages for enhanced responses to subsequent activation of the RNA sensor TLR7. Because TLR4 and TLR7 use the same signaling machinery, this indicates that they are selectively reprogrammed in this process. TLR7 training requires type I interferons and is marked by a strong increase in Myddosome assemblies at endosomal membranes, without changes in TLR7 abundance or ligand uptake. These findings reveal that innate immune training can be rapidly encoded at the level of receptor-proximal signaling, linking microbial priming to enhanced nucleic acid immunity and potentially to TLR7-driven autoimmunity in genetically predisposed individuals. Short summaryLPS priming drives receptor-proximal immune adaptation in macrophages, inducing classical TLR4 endotoxin tolerance while simultaneously sensitizing the RNA sensor TLR7 by enhancing Myddosome nucleation at endosomal membranes. This compartment- and receptor specific reprogramming may link prior infection history to elevated risk of TLR7-driven autoimmunity.

cell biology↗

Structural control for the coordinated assembly into functional pathogenic type-3 secretion systems

Functional injectisomes of the type-3 secretion system assemble into highly defined and stoichiometric bacterial molecular machines essential for infecting human and other eukaryotic cells. However, the mechanism that governs the regulated step-wise assembly process from the nucleation-phase, to ring-assembly, and the filamentous phase into a membrane embedded needle complex is unclear. We here report that the formation of a megadalton-sized needle complexes from Salmonella enterica serovar Typhimurium (SPI-1, Salmonella pathogenicity island-1) with proper stoichiometries is highly structurally controlled competing against the self-assembly propensity of injectisome components, leading to a highly unusual structurally-pleiotropic phenotype. The structure of the entire needle complex from pathogenic injectisomes was solved by cryo electron microscopy, focused refinements (2.5-4 [A]) and co-variation analysis revealing an overall asymmetric arrangement containing cyclic, helical, and asymmetric sub-structures. The centrally located export apparatus assembles into a conical, pseudo-helical structure and provides a structural template that guides the formation of a 24-mer cyclic, surrounding ring, which then serves as a docking interface comprising three different conformations for sixteen N-terminal InvG subunits of the outer secretin ring. Unexpectedly, the secretin ring excludes the 16th protein chain at the C-terminal outer ring, resulting in a pleiotropic 16/15-mer ring and consequently to an overall 24:16/15 basal body structure. Finally, we report how the transition from the pseudo-helical export apparatus into the helical filament is structurally resolved to generate the protein secretion channel, which provides the structural basis to restrict access of unfolded effector substrates. These results highlight the diverse molecular signatures required for a highly coordinated assembly process and provide the molecular basis for understanding triggering and transport of unfolded proteins through injectisomes.

molecular biology↗