The viscoelasticity of membrane tethers and its importance for cell adhesion

被引:53
作者
Schmitz, Julia [1 ]
Benoit, Martin [1 ]
Gottschalk, Kay-Eberhard [1 ]
机构
[1] Univ Munich, D-80799 Munich, Germany
关键词
D O I
10.1529/biophysj.107.124289
中图分类号
Q6 [生物物理学];
学科分类号
071011 ;
摘要
Cell adhesion mechanically couples cells to surfaces. The durability of individual bonds between the adhesive receptors and their ligands in the presence of forces determines the cellular adhesion strength. For adhesive receptors such as integrins, it is a common paradigm that the cell regulates its adhesion strength by altering the affinity state of the receptors. However, the probability distribution of rupture forces is dependent not only on the affinity of individual receptor-ligand bonds but also on the mechanical compliance of the cellular anchorage of the receptor. Hence, by altering the anchorage, the cell can regulate its adhesion strength without changing the affinity of the receptor. Here, we analyze the anchorage of the integrin VLA-4 with its ligand VCAM-1. For this purpose, we develop a model based on the Kelvin body, which allows one to quantify the mechanical properties of the adhesive receptor's anchorage using atomic force microscopy on living cells. As we demonstrate, the measured force curves give valuable insight into the mechanics of the cellular anchorage of the receptor, which is described by the tether stiffness, the membrane rigidity, and the membrane viscosity. The measurements relate to a tether stiffness of k(t)=1.6 mu N/m, an initial membrane rigidity of k(i)=260 mu N/m, and a viscosity of mu=5.9 mu N.s/m. Integrins exist in different activation states. When activating the integrin with Mg2+, we observe altered viscoelastic parameters of k(t)=0.9 mu N/m, k(i)=190 mu N/m, and mu=6.0 mu N.s/m. Based on our model, we postulate that anchorage-related effects are common regulating mechanisms for cellular adhesion beyond affinity regulation.
引用
收藏
页码:1448 / 1459
页数:12
相关论文
共 58 条
[21]   Force-mediated kinetics of single P-selectin ligand complexes observed by atomic force microscopy [J].
Fritz, J ;
Katopodis, AG ;
Kolbinger, F ;
Anselmetti, D .
PROCEEDINGS OF THE NATIONAL ACADEMY OF SCIENCES OF THE UNITED STATES OF AMERICA, 1998, 95 (21) :12283-12288
[22]  
Fung Y. C., 2013, BIOMECHANICS MECH PR
[23]   A computational model of transmembrane integrin clustering [J].
Gottschalk, KE ;
Kessler, H .
STRUCTURE, 2004, 12 (06) :1109-1116
[24]   Subsecond induction of α4 integrin clustering by immobilized chemokines stimulates leukocyte tethering and rolling on endothelial vascular cell adhesion molecule 1 under flow conditions [J].
Grabovsky, V ;
Feigelson, S ;
Chen, C ;
Bleijs, DA ;
Peled, A ;
Cinamon, G ;
Baleux, F ;
Arenzana-Seisdedos, F ;
Lapidot, T ;
van Kooyk, Y ;
Lobb, RR ;
Alon, R .
JOURNAL OF EXPERIMENTAL MEDICINE, 2000, 192 (04) :495-505
[25]   Affinity imaging of red blood cells using an atomic force microscope [J].
Grandbois, M ;
Dettmann, W ;
Benoit, M ;
Gaub, HE .
JOURNAL OF HISTOCHEMISTRY & CYTOCHEMISTRY, 2000, 48 (05) :719-724
[26]   Nano- to microscale dynamics of P-selectin detachment from leukocyte interfaces. II. Tether flow terminated by P-selectin dissociation from PSGL-1 [J].
Heinrich, V ;
Leung, A ;
Evans, E .
BIOPHYSICAL JOURNAL, 2005, 88 (03) :2299-2308
[27]  
Hochmuth RM, 1996, BIOPHYS J, V70, P358, DOI 10.1016/S0006-3495(96)79577-2
[28]   Eukaryotic membrane tethers revisited using magnetic tweezers [J].
Hosu, Basarab G. ;
Sun, Mingzhai ;
Marga, Francoise ;
Grandbois, Michel ;
Forgacs, Gabor .
PHYSICAL BIOLOGY, 2007, 4 (02) :67-78
[29]   Highly stretched single polymers:: Atomic-force-microscope experiments versus ab-initio theory -: art. no. 048301 [J].
Hugel, T ;
Rief, M ;
Seitz, M ;
Gaub, HE ;
Netz, RR .
PHYSICAL REVIEW LETTERS, 2005, 94 (04)
[30]   Energy of dissociation of lipid bilayer from the membrane skeleton of red blood cells [J].
Hwang, WC ;
Waugh, RE .
BIOPHYSICAL JOURNAL, 1997, 72 (06) :2669-2678