TY - JOUR
T1 - Protrusion force microscopy reveals oscillatory force generation and mechanosensing activity of human macrophage podosomes
AU - Labernadie, Anna
AU - Bouissou, Anaïs
AU - Delobelle, Patrick
AU - Balor, Stéphanie
AU - Voituriez, Raphael
AU - Proag, Amsha
AU - Fourquaux, Isabelle
AU - Thibault, Christophe
AU - Vieu, Christophe
AU - Poincloux, Renaud
AU - Charrière, Guillaume M.
AU - Maridonneau-Parini, Isabelle
N1 - Publisher Copyright:
© 2014 Macmillan Publishers Limited. All rights reserved.
PY - 2014/11/11
Y1 - 2014/11/11
N2 - Podosomes are adhesion structures formed in monocyte-derived cells. They are F-actin-rich columns perpendicular to the substrate surrounded by a ring of integrins. Here, to measure podosome protrusive forces, we designed an innovative experimental setup named protrusion force microscopy (PFM), which consists in measuring by atomic force microscopy the deformation induced by living cells onto a compliant Formvar sheet. By quantifying the heights of protrusions made by podosomes onto Formvar sheets, we estimate that a single podosome generates a protrusion force that increases with the stiffness of the substratum, which is a hallmark of mechanosensing activity. We show that the protrusive force generated at podosomes oscillates with a constant period and requires combined actomyosin contraction and actin polymerization. Finally, we elaborate a model to explain the mechanical and oscillatory activities of podosomes. Thus, PFM shows that podosomes are mechanosensing cell structures exerting a protrusive force.
AB - Podosomes are adhesion structures formed in monocyte-derived cells. They are F-actin-rich columns perpendicular to the substrate surrounded by a ring of integrins. Here, to measure podosome protrusive forces, we designed an innovative experimental setup named protrusion force microscopy (PFM), which consists in measuring by atomic force microscopy the deformation induced by living cells onto a compliant Formvar sheet. By quantifying the heights of protrusions made by podosomes onto Formvar sheets, we estimate that a single podosome generates a protrusion force that increases with the stiffness of the substratum, which is a hallmark of mechanosensing activity. We show that the protrusive force generated at podosomes oscillates with a constant period and requires combined actomyosin contraction and actin polymerization. Finally, we elaborate a model to explain the mechanical and oscillatory activities of podosomes. Thus, PFM shows that podosomes are mechanosensing cell structures exerting a protrusive force.
U2 - 10.1038/ncomms6343
DO - 10.1038/ncomms6343
M3 - Article
C2 - 25385672
AN - SCOPUS:84924772460
SN - 2041-1723
VL - 5
JO - Nature Communications
JF - Nature Communications
M1 - 5343
ER -