Direct, dynamic assessment of cell-matrix interactions inside fibrillar collagen lattices

被引:94
作者
Petroll, WM [1 ]
Ma, LS [1 ]
机构
[1] Univ Texas, SW Med Ctr, Dept Ophthalmol, Dallas, TX 75390 USA
来源
CELL MOTILITY AND THE CYTOSKELETON | 2003年 / 55卷 / 04期
关键词
cell motility; collagen matrices; actomyosin; cell mechanics; time-lapse imaging; focal adhesions;
D O I
10.1002/cm.10126
中图分类号
Q2 [细胞生物学];
学科分类号
071009 ; 090102 ;
摘要
Cell mechanical behavior has traditionally been studied using 2-D planar elastic substrates. The goal of this study was to directly assess cell-matrix mechanical interactions inside more physiologic 3-D collagen matrices. Rabbit corneal fibroblasts transfected to express GFP-zyxin were plated at low density inside 100 mum-thick type I collagen matrices. 3-D datasets of isolated cells were acquired at 1-3-min intervals for up to 5 h using fluorescent and Nomarski DIC imaging. Unlike cells on 2-D substrates, cells inside the collagen matrices had a bipolar morphology with thin pseudopodial processes, and without lamellipodia. The organization of the collagen fibrils surrounding each cell was clearly Visualized using DIC. Using time-lapse color overlays of GFP and DIC images, displacement and/or realignment of collagen fibrils by focal adhesions could be directly visualized. During pseudopodial extension, new focal adhesions often formed in a line along collagen fibrils in front of the cell, while existing adhesions moved backward. This process generated tractional forces as indicated by the pulling in of collagen fibrils in front of the cell. Meanwhile, adhesions on both the dorsal and ventral surface of the cell body generally moved forward, resulting in contractile shortening along the pseudopodia and localized extracellular matrix (ECM) compression. Cytochalasin D induced rapid disassembly of focal adhesions, cell elongation, and ECM relaxation. This experimental model allows direct, dynamic assessment of cell-matrix interactions inside a 3-D fibrillar ECM. The data suggest that adhesions organize along actin-based contractile elements that are much less complex than the network of actin filaments that mechanically links lamellar adhesions on 2-D substrates. (C) 2003 Wiley-Liss, Inc.
引用
收藏
页码:254 / 264
页数:11
相关论文
共 58 条
[1]   Using the Hilbert transform for 3D visualization of differential interference contrast microscope images [J].
Arnison, MR ;
Cogswell, CJ ;
Smith, NI ;
Fekete, PW ;
Larkin, KG .
JOURNAL OF MICROSCOPY-OXFORD, 2000, 199 (01) :79-84
[2]   The compliance of collagen gels regulates transforming growth factor-β induction of α-smooth muscle actin in fibroblasts [J].
Arora, PD ;
Narani, N ;
McCulloch, CAG .
AMERICAN JOURNAL OF PATHOLOGY, 1999, 154 (03) :871-882
[3]   Force and focal adhesion assembly: a close relationship studied using elastic micropatterned substrates [J].
Balaban, NQ ;
Schwarz, US ;
Riveline, D ;
Goichberg, P ;
Tzur, G ;
Sabanay, I ;
Mahalu, D ;
Safran, S ;
Bershadsky, A ;
Addadi, L ;
Geiger, B .
NATURE CELL BIOLOGY, 2001, 3 (05) :466-472
[4]   BEHAVIOR OF FIBROBLASTS FROM DEVELOPING AVIAN CORNEA - MORPHOLOGY AND MOVEMENT INSITU AND INVITRO [J].
BARD, JBL ;
HAY, ED .
JOURNAL OF CELL BIOLOGY, 1975, 67 (02) :400-418
[5]  
BarryLane PA, 1997, CORNEA, V16, P72
[6]   PRODUCTION OF A TISSUE-LIKE STRUCTURE BY CONTRACTION OF COLLAGEN LATTICES BY HUMAN-FIBROBLASTS OF DIFFERENT PROLIFERATIVE POTENTIAL INVITRO [J].
BELL, E ;
IVARSSON, B ;
MERRILL, C .
PROCEEDINGS OF THE NATIONAL ACADEMY OF SCIENCES OF THE UNITED STATES OF AMERICA, 1979, 76 (03) :1274-1278
[7]  
BELLOWS CG, 1981, J CELL SCI, V50, P299
[8]   Flexible substrata for the detection of cellular traction forces [J].
Beningo, KA ;
Wang, YL .
TRENDS IN CELL BIOLOGY, 2002, 12 (02) :79-84
[9]   Nascent focal adhesions are responsible for the generation of strong propulsive forces in migrating fibroblasts [J].
Beningo, KA ;
Dembo, M ;
Kaverina, I ;
Small, JV ;
Wang, YL .
JOURNAL OF CELL BIOLOGY, 2001, 153 (04) :881-887
[10]  
Brown RA, 1998, J CELL PHYSIOL, V175, P323, DOI 10.1002/(SICI)1097-4652(199806)175:3<323::AID-JCP10>3.0.CO