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Kuehn, J.

Publications and source records attributed to Kuehn, J..

2 recordsLinked to original sources

A GPVI-platelet-neutrophil-NET axis drives systemic sclerosis

Systemic sclerosis (SSc) is immune-mediate inflammatory disease characterized by progressive tissue fibrosis. We observed that circulating neutrophils from patients with diffuse SSc exhibit an activated phenotype, a finding echoed in blood and skin transcriptomes. Neutrophil depletion abrogated experimental SSc induced by cutaneous injection of hypochlorous acid (HOCl) or bleomycin (BLM), and adoptive transfer of HOCl and BLM neutrophils induced skin and lung fibrosis in healthy mice, establishing neutrophils as necessary and sufficient for fibrosis. We noted that SSc patients exhibited platelet activation, a phenotype that preceded neutrophil activation in mice, suggesting an upstream role. Indeed, platelet depletion abrogated neutrophil activation and tissue fibrosis, and exposure to HOCl or BLM platelets conferred upon wild-type neutrophils the capacity to induce skin and lung fibrosis via neutrophil extracellular traps (NETs). Genetic and therapeutic blockade of the platelet collagen receptor GPVI attenuated platelet and neutrophil activation, reduced circulating NETs, and protected animals from skin and lung fibrosis. These findings identify the GPVI-platelet-neutrophil-NET as a new source of therapeutic targets in SSc.

immunology↗

Type IV-A3 CRISPR-Cas systems drive inter-plasmid conflicts by acquiring spacers in trans

Type IV-A CRISPR-Cas systems are primarily encoded on plasmids and form multi-subunit ribonucleoprotein complexes with unknown biological functions. In contrast to other CRISPR-Cas types, they lack the archetypical CRISPR acquisition module and encode a DinG helicase instead of a nuclease component. Type IV-A3 systems are carried by large conjugative plasmids that often harbor multiple antibiotic-resistance genes. Although their CRISPR array contents suggest a role in inter-plasmid conflicts, this function and the underlying mechanisms have remained unexplored. Here, we demonstrate that a plasmid-encoded type IV-A3 CRISPR-Cas system co-opts the type I-E adaptation machinery from its clinical Klebsiella pneumoniae host to update its CRISPR array. Furthermore, we demonstrate that robust interference of conjugative plasmids and phages is elicited through CRISPR RNA-dependent transcriptional repression. By targeting plasmid core functions, type IV-A3 can prevent the uptake of incoming plasmids, limit their horizontal transfer, and destabilize co-residing plasmids, altogether supporting type IV-A3s involvement in plasmid competition. Collectively, our findings shed light on the molecular mechanisms and ecological function of type IV-A3 systems and have broad implications for understanding and countering the spread of antibiotic resistance in clinically relevant strains.

microbiology↗