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Cells adapt their actin cytoskeletons architecture to structural cues of the environment in all three dimensions. Nevertheless, how manipulating cell shape influences the actin cytoskeletons z-dimension is unstudied, but crucial for an understanding of the mutual influence of cell shape, cell tension and actin architecture. To study the effect of shape on the z-dimension of the actin cytoskeleton we combine metal-induced energy transfer as a super-resolution technique with micropatterning. This allows us not only to precisely manipulate the shape of the cell but also to regulate forces by changing the shape while studying specific actin structures with super-resolution.
Carolin Grandy,Fabian Port,Jonas Pfeil, andKay-Eberhard Gottschalk
"Super-resolution imaging of the third dimension of the actin cytoskeleton using metal-induced energy transfer and micropatterning", Proc. SPIE 11967, Single Molecule Spectroscopy and Superresolution Imaging XV, 1196709 (2 March 2022); https://doi.org/10.1117/12.2608066
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Carolin Grandy, Fabian Port, Jonas Pfeil, Kay-Eberhard Gottschalk, "Super-resolution imaging of the third dimension of the actin cytoskeleton using metal-induced energy transfer and micropatterning," Proc. SPIE 11967, Single Molecule Spectroscopy and Superresolution Imaging XV, 1196709 (2 March 2022); https://doi.org/10.1117/12.2608066