TY - JOUR
T1 - Combined AFM and super-resolution localisation microscopy
T2 - Investigating the structure and dynamics of podosomes
AU - Hirvonen, Liisa M.
AU - Marsh, Richard J.
AU - Jones, Gareth E.
AU - Cox, Susan
PY - 2020/9
Y1 - 2020/9
N2 - Podosomes are mechanosensitive attachment/invasion structures that form on the matrix-adhesion interface of cells and protrude into the extracellular matrix to probe and remodel. Despite their central role in many cellular processes, their exact molecular structure and function remain only partially understood. We review recent progress in molecular scale imaging of podosome architecture, including our newly developed localisation microscopy technique termed HAWK which enables artefact-free live-cell super-resolution microscopy of podosome ring proteins, and report new results on combining fluorescence localisation microscopy (STORM/PALM) and atomic force microscopy (AFM) on one setup, where localisation microscopy provides the location and dynamics of fluorescently labelled podosome components, while the spatial variation of stiffness is mapped with AFM. For two-colour localisation microscopy we combine iFluor-647, which has previously been shown to eliminate the need to change buffer between imaging modes, with the photoswitchable protein mEOS3.2, which also enables live cell imaging.
AB - Podosomes are mechanosensitive attachment/invasion structures that form on the matrix-adhesion interface of cells and protrude into the extracellular matrix to probe and remodel. Despite their central role in many cellular processes, their exact molecular structure and function remain only partially understood. We review recent progress in molecular scale imaging of podosome architecture, including our newly developed localisation microscopy technique termed HAWK which enables artefact-free live-cell super-resolution microscopy of podosome ring proteins, and report new results on combining fluorescence localisation microscopy (STORM/PALM) and atomic force microscopy (AFM) on one setup, where localisation microscopy provides the location and dynamics of fluorescently labelled podosome components, while the spatial variation of stiffness is mapped with AFM. For two-colour localisation microscopy we combine iFluor-647, which has previously been shown to eliminate the need to change buffer between imaging modes, with the photoswitchable protein mEOS3.2, which also enables live cell imaging.
KW - AFM
KW - Localisation microscopy
KW - Multi-modal microscopy
KW - Podosome
KW - Super-resolution
UR - http://www.scopus.com/inward/record.url?scp=85088785139&partnerID=8YFLogxK
U2 - 10.1016/j.ejcb.2020.151106
DO - 10.1016/j.ejcb.2020.151106
M3 - Article
AN - SCOPUS:85088785139
SN - 0171-9335
VL - 99
JO - European Journal of Cell Biology
JF - European Journal of Cell Biology
IS - 7
M1 - 151106
ER -