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Strohmeyer, N.

Publications and source records attributed to Strohmeyer, N..

2 recordsLinked to original sources

Load-dependent RGD-context sensing via αV-class integrins reprograms cellular adhesion and mechanics within seconds

The cellular ability to biophysically and biochemically recognize extracellular matrix proteins is fundamental to adhesion, mechanics, migration, and morphogenesis, and influences homeostasis and disease. However, the mechanisms underlying integrin-mediated mechanosensing of the arginine-glycine-aspartic acid (RGD)-motif of vitronectin and fibronectin remain elusive. Here, we discover that within seconds of sensing vitronectin, V-class integrins initiate and strengthen adhesion biphasically through complementary mechanotransduction pathways, which rely on the catch bond behavior of single V{beta}3 integrins. The first adhesion phase requires V{beta}3 and V{beta}5 integrin-associated actomyosin and FAK activity, while V{beta}5 integrin additionally requires clathrin-mediated endocytosis. With elevating mechanical load, the second phase requires V{beta}3 integrin-directed Arp2/3, cSrc, and PI3K signaling that dominates V{beta}5 integrin in organizing the consensus adhesome on vitronectin. Simultaneously, V{beta}5 integrin regulates the mechanical stiffening of fibroblasts. Thus, V-class integrins exhibit rapid RGD-motif- and {beta}-subunit-specific programs to synergistically guide mammalian cell adhesion and mechanics upon encountering diverse extracellular environments.

biophysics↗

Morphometry and mechanical instability at the onset of epithelial bladder cancer

Malignancies of epithelial tissues, called carcinomas, account for the majority of cancer cases. Much cancer research has focused on genetic alterations and their relation to different carcinoma phenotypes. Besides a rewiring in the signalling networks, carcinoma progression is accompanied by mechanical changes in the epithelial cells and the extracellular matrix. Here, we reveal intricate morphologies in the basement membrane at the onset of bladder cancer, and propose that they emerge from a mechanical buckling instability upon epithelial overgrowth. Using a combination of microscopy imaging of the mouse and human bladder tissue, elasticity theory, and numerical simulations of differential growth in the bladder mucosa, we find that aberrant tissue morphologies can emerge through stiffness changes in the different mucosa layers. The resulting thickening, wrinkles and folds exhibit qualitative and quantitative similarity with imaged early papillary tumors and carcinomas in situ. Atomic force microscopy indeed reveals local stiffness changes in the pathological basement membrane. Our findings suggest a mechanical origin of the different carcinoma subtypes in the bladder, which have vastly different clinical prognosis. They might provide the basis for a new line of attack in medical carcinoma treatment and prophylaxis.

cancer biology↗