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von Hoven, G.

Publications and source records attributed to von Hoven, G..

2 recordsLinked to original sources

Recovery of fibroblasts from membrane attack by S. aureus α-toxin does not depend on acid sphingomyelinase but involves macropinocytosis

Damage of the plasma membrane by mechanical stress or pore forming proteins, like streptolysin O, may trigger Ca2+ influx-dependent repair mechanisms. Ca2+ influx-dependent lysosomal exocytosis, leading to release of acid sphingomyelinase, remodeling of the plasma membrane and caveolar endocytosis of membrane lesions, is reportedly involved in membrane repair after both mechanical damage or perforation by streptolysin O. Although the small {beta}-barrel pore forming S. aureus -toxin may also increase cytosolic Ca2+ concentration in certain cell types, and reportedly lead to release of acid sphingomyelinase from endothelial cells, evidence for a role of this response for membrane repair after attack by -toxin is lacking. We exploited fibroblasts expressing dysfunctional acid sphingomyelinase to investigate whether this enzyme is required for membrane repair after S. aureus -toxin attack. Because -toxin-dependent loss of cellular ATP and externalization of phosphatidylserine were reversible, membrane damage by this pore former triggered an effective repair response in these cells. Although -toxin depolarized the plasma membrane, it did not cause a simultaneous increase of [Ca2+]i. Consistently, there was no release of {beta}-hexosaminidase, a marker of lysosomal exocytosis. Acid sphingomyelinase-deficient fibroblasts internalized -toxin, which however did not co-localize with caveolin-1, but with FITC-dextran 70kDa, a cargo of macropinosomes. Inhibition of actin polymerization or sterol synthesis prevented recovery from -toxin-dependent membrane damage. Therefore, we conclude that defense of fibroblasts against -toxin does not depend on rapid calcium-influx, lysosomal exocytosis, and functional acid sphingomyelinase, but involves ongoing cholesterol synthesis and macropinocytosis.

cell biology↗

Glutamine 666 renders murine ADAM10 an inefficient S.aureus alpha-toxin receptor

S. aureus is one of the most important causes of infectious diseases in hospitalized individuals and outpatients. The majority of clinical isolates secretes large amounts of the small membrane pore-forming -toxin, alias -hemolysin, which serves as an important virulence factor of this organism. The identification of A Disintegrin And Metalloprotease (ADAM10) as its high affinity receptor held great promise for a better understanding of the processes underlying membrane damage by -toxin. Twelve years on however, the molecular details of initial toxin binding to target cells remain elusive. Because we noted that several murine cell lines were resilient to -toxin, we considered the possibility that murine ADAM10 could be less efficient a receptor, as compared to human or bovine orthologues. Accordingly, we sought to identify amino acid residues in ADAM10, which could explain species-dependent functionality as receptor for -toxin. Our work led to the finding that replacement of a single glutamine residue (Q666) in murine ADAM10 with corresponding glutamic acid (E665) of human or bovine ADAM10 enhances significantly the binding and consequent cytotoxicity of -toxin. Consistently, a synthetic peptide comprising E665 mitigated -toxin-dependent hemolysis. In multicellular organisms, E665 is highly conserved, but mice and several other members of the taxon glires evolved glutamine at the corresponding position. The residue is located in a short membrane proximal, extracellular region of ADAM10. Taken together, available structural information, in silico docking, and functional data suggests that -toxin monomers could bind to cellular membranes via this so-called stalk region of ADAM10 and phosphocholine.

microbiology↗