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Imaging excised apical plasma membrane patches of MDCK cells in physiological conditions with atomic force microscopy

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Abstract

 We combined the patch-clamp technique with atomic force microscopy (AFM) to visualize plasma membrane proteins protruding from the extracellular surface of cultured kidney cells (MDCK cells). To achieve molecular resolution, patches were mechanically isolated from whole MDCK cells by applying the patch-clamp technique. The excised inside-out patches were transferred on freshly cleaved mica and imaged with the AFM in air and under physiological conditions (i.e. in fluid). Thus, the resolution could be increased considerably (lateral and vertical resolutions 5 and 0.1 nm, respectively) as compared to experiments on intact cells, where plasma membrane proteins were hardly detectable. The apical plasma membrane surface of the MDCK cells showed multiple protrusions which could be identified as membrane proteins through the use of pronase. These proteins had a density of about 90 per μm², with heights between 1 and 9 nm, and lateral dimensions of 20–60 nm. Their frequency distribution showed a peak value of 3 nm for the protein height. A simplified assumption – modelling plasma membrane proteins as spherical structures protruding from the lipid bilayer – allowed an estimation of the possible molecular weights of these proteins. They range from 50 kDa to 710 kDa with a peak value of 125 kDa. We conclude that AFM can be used to study the molecular structures of membranes which were isolated with the patch-clamp technique. Individual membrane proteins and protein clusters, and their arrangement and distribution in a native plasma membrane can be visualized under physiological conditions, which is a first step for their identification.

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Received: 18 December 1996 / Accepted: 5 March 1997

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Lärmer, J., Schneider, S., Danker, T. et al. Imaging excised apical plasma membrane patches of MDCK cells in physiological conditions with atomic force microscopy. Pflügers Arch 434, 254–260 (1997). https://doi.org/10.1007/s004240050393

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  • DOI: https://doi.org/10.1007/s004240050393

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