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PMID: 23798731 Published · ppublish English Journal Article Research Support, N.I.H., Extramural Research Support, Non-U.S. Gov't

Physical limits of cell migration: control by ECM space and nuclear deformation and tuning by proteolysis and traction force.

The Journal of cell biology ·Vol. 201 ·No. 7 ·2013-06-24 ·Pages 1069-84

Wolf K, Te Lindert M, Krause M, Alexander S, Te Riet J, Willis AL, Hoffman RM, Figdor CG, Weiss SJ, Friedl P

Abstract

Cell migration through 3D tissue depends on a physicochemical balance between cell deformability and physical tissue constraints. Migration rates are further governed by the capacity to degrade ECM by proteolytic enzymes, particularly matrix metalloproteinases (MMPs), and integrin- and actomyosin-mediated mechanocoupling. Yet, how these parameters cooperate when space is confined remains unclear. Using MMP-degradable collagen lattices or nondegradable substrates of varying porosity, we quantitatively identify the limits of cell migration by physical arrest. MMP-independent migration declined as linear function of pore size and with deformation of the nucleus, with arrest reached at 10% of the nuclear cross section (tumor cells, 7 µm²; T cells, 4 µm²; neutrophils, 2 µm²). Residual migration under space restriction strongly depended upon MMP-dependent ECM cleavage by enlarging matrix pore diameters, and integrin- and actomyosin-dependent force generation, which jointly propelled the nucleus. The limits of interstitial cell migration thus depend upon scaffold porosity and deformation of the nucleus, with pericellular collagenolysis and mechanocoupling as modulators.

MeSH Terms
Animals Cattle Cell Line Cell Movement/physiology Collagen/chemistry Extracellular Matrix/physiology,ultrastructure Humans Hydrogels/chemistry Integrins/metabolism Kinetics Matrix Metalloproteinases/metabolism,physiology Proteolysis Rats Surface Properties
Chemicals
Hydrogels Integrins Collagen Matrix Metalloproteinases
Authors & Affiliations
10 authors, click to expand affiliations / ORCID
Wolf Katarina
Department of Cell Biology, Radboud University Nijmegen Medical Centre, 6500 HB Nijmegen, Netherlands. k.wolf@ncmls.ru.nl
Te Lindert Mariska
Krause Marina
Alexander Stephanie
Te Riet Joost
Willis Amanda L
Hoffman Robert M
Figdor Carl G
Weiss Stephen J
Friedl Peter
References (73)
73 references, click to expand
  1. Matrix crosslinking forces tumor progression by enhancing integrin signaling.
    Cell. 2009 Nov 25;139(5):891-906 PMID: 19931152
  2. Filaments made from A- and B-type lamins differ in structure and organization.
    J Cell Sci. 2008 Jan 15;121(Pt 2):215-25 PMID: 18187453
  3. Tumor cell invasion through matrigel is regulated by activated matrix metalloproteinase-2.
    Anticancer Res. 1997 Sep-Oct;17(5A):3201-10 PMID: 9413149
  4. Neutrophils emigrate from venules by a transendothelial cell pathway in response to FMLP.
    J Exp Med. 1998 Mar 16;187(6):903-15 PMID: 9500793
  5. Regulation of cell invasion and morphogenesis in a three-dimensional type I collagen matrix by membrane-type matrix metalloproteinases 1, 2, and 3.
    J Cell Biol. 2000 Jun 12;149(6):1309-23 PMID: 10851027
  6. Segregation and activation of myosin IIB creates a rear in migrating cells.
    J Cell Biol. 2008 Nov 3;183(3):543-54 PMID: 18955554
  7. Plasticity of cell migration: a multiscale tuning model.
    J Cell Biol. 2010 Jan 11;188(1):11-9 PMID: 19951899
  8. Amoeboid shape change and contact guidance: T-lymphocyte crawling through fibrillar collagen is independent of matrix remodeling by MMPs and other proteases.
    Blood. 2003 Nov 1;102(9):3262-9 PMID: 12855577
  9. A tense situation: forcing tumour progression.
    Nat Rev Cancer. 2009 Feb;9(2):108-22 PMID: 19165226
  10. Modulation of the membrane type 1 matrix metalloproteinase cytoplasmic tail enhances tumor cell invasion and proliferation in three-dimensional collagen matrices.
    J Biol Chem. 2009 Jul 24;284(30):19791-9 PMID: 19458085
  11. Disruption of Rho signal transduction upon cell detachment.
    J Cell Sci. 2004 Jul 15;117(Pt 16):3511-8 PMID: 15226371
  12. The nuclear envelope lamina network has elasticity and a compressibility limit suggestive of a molecular shock absorber.
    J Cell Sci. 2004 Sep 15;117(Pt 20):4779-86 PMID: 15331638
  13. Direct visualization of protease activity on cells migrating in three-dimensions.
    Matrix Biol. 2009 Jan;28(1):3-10 PMID: 19010413
  14. Reconstructing leukocyte migration in 3D extracellular matrix by time-lapse videomicroscopy and computer-assisted tracking.
    Methods Mol Biol. 2004;239:77-90 PMID: 14573911
  15. The role of chromatin structure in cell migration.
    Trends Cell Biol. 2011 Jan;21(1):6-11 PMID: 20951589
  16. Rheology and confocal reflectance microscopy as probes of mechanical properties and structure during collagen and collagen/hyaluronan self-assembly.
    Biophys J. 2009 Feb 18;96(4):1566-85 PMID: 19217873
  17. Two-photon laser-generated microtracks in 3D collagen lattices: principles of MMP-dependent and -independent collective cancer cell invasion.
    Phys Biol. 2011 Feb;8(1):015010 PMID: 21301056
  18. Adhesion in cell migration.
    Curr Opin Cell Biol. 1995 Oct;7(5):697-706 PMID: 8573345
  19. Proteolytic interstitial cell migration: a five-step process.
    Cancer Metastasis Rev. 2009 Jun;28(1-2):129-35 PMID: 19153672
  20. Long-term histological comparison between near-infrared irradiated skin and scar tissues.
    Clin Cosmet Investig Dermatol. 2010 Nov 25;3:143-9 PMID: 21437069
  21. Confinement-optimized three-dimensional T cell amoeboid motility is modulated via myosin IIA-regulated adhesions.
    Nat Immunol. 2010 Oct;11(10):953-61 PMID: 20835229
  22. Cell migration through small gaps.
    Eur Biophys J. 2006 Oct;35(8):713-9 PMID: 16871382
  23. The mechanical integrin cycle.
    J Cell Sci. 2009 Jan 15;122(Pt 2):179-86 PMID: 19118210
  24. Pseudopodial actin dynamics control epithelial-mesenchymal transition in metastatic cancer cells.
    Cancer Res. 2010 May 1;70(9):3780-90 PMID: 20388789
  25. Membrane type I matrix metalloproteinase usurps tumor growth control imposed by the three-dimensional extracellular matrix.
    Cell. 2003 Jul 11;114(1):33-45 PMID: 12859896
  26. Actin, microtubules, and vimentin intermediate filaments cooperate for elongation of invadopodia.
    J Cell Biol. 2010 May 3;189(3):541-56 PMID: 20421424
  27. A close-up view of migrating Langerhans cells in the skin.
    J Invest Dermatol. 2002 Jan;118(1):117-25 PMID: 11851884
  28. Rapid leukocyte migration by integrin-independent flowing and squeezing.
    Nature. 2008 May 1;453(7191):51-5 PMID: 18451854
  29. Enhancing mechanical properties of tissue-engineered constructs via lysyl oxidase crosslinking activity.
    J Biomed Mater Res A. 2003 Sep 1;66(3):513-21 PMID: 12918034
  30. Collagen reorganization at the tumor-stromal interface facilitates local invasion.
    BMC Med. 2006 Dec 26;4(1):38 PMID: 17190588
  31. Cancer invasion and the microenvironment: plasticity and reciprocity.
    Cell. 2011 Nov 23;147(5):992-1009 PMID: 22118458
  32. Tumor cell traffic through the extracellular matrix is controlled by the membrane-anchored collagenase MT1-MMP.
    J Cell Biol. 2004 Nov 22;167(4):769-81 PMID: 15557125
  33. Collagen-based cell migration models in vitro and in vivo.
    Semin Cell Dev Biol. 2009 Oct;20(8):931-41 PMID: 19682592
  34. An algorithm for extracting the network geometry of three-dimensional collagen gels.
    J Microsc. 2008 Dec;232(3):463-75 PMID: 19094023
  35. Impact of tumor cell cytoskeleton organization on invasiveness and migration: a microchannel-based approach.
    PLoS One. 2010 Jan 15;5(1):e8726 PMID: 20090950
  36. Protease-dependent versus -independent cancer cell invasion programs: three-dimensional amoeboid movement revisited.
    J Cell Biol. 2009 Apr 6;185(1):11-9 PMID: 19332889
  37. Elucidating the role of matrix stiffness in 3D cell migration and remodeling.
    Biophys J. 2011 Jan 19;100(2):284-93 PMID: 21244824
  38. The nuclear envelope environment and its cancer connections.
    Nat Rev Cancer. 2012 Feb 16;12(3):196-209 PMID: 22337151
  39. Electron microscopy of collagen fibril structure in vitro and in vivo including three-dimensional reconstruction.
    Methods Cell Biol. 2008;88:319-45 PMID: 18617041
  40. Real-time in vivo dual-color imaging of intracapillary cancer cell and nucleus deformation and migration.
    Cancer Res. 2005 May 15;65(10):4246-52 PMID: 15899816
  41. The differential regulation of cell motile activity through matrix stiffness and porosity in three dimensional collagen matrices.
    Biomaterials. 2010 Sep;31(25):6425-35 PMID: 20537378
  42. Navigating ECM barriers at the invasive front: the cancer cell-stroma interface.
    Annu Rev Cell Dev Biol. 2009;25:567-95 PMID: 19575644
  43. Multi-step pericellular proteolysis controls the transition from individual to collective cancer cell invasion.
    Nat Cell Biol. 2007 Aug;9(8):893-904 PMID: 17618273
  44. Pore size variable type I collagen gels and their interaction with glioma cells.
    Biomaterials. 2010 Jul;31(21):5678-88 PMID: 20430434
  45. Matrix elasticity, cytoskeletal forces and physics of the nucleus: how deeply do cells 'feel' outside and in?
    J Cell Sci. 2010 Feb 1;123(Pt 3):297-308 PMID: 20130138
  46. Dynamic imaging of cancer growth and invasion: a modified skin-fold chamber model.
    Histochem Cell Biol. 2008 Dec;130(6):1147-54 PMID: 18987875
  47. Matrix architecture defines the preferential localization and migration of T cells into the stroma of human lung tumors.
    J Clin Invest. 2012 Mar;122(3):899-910 PMID: 22293174
  48. Compensation mechanism in tumor cell migration: mesenchymal-amoeboid transition after blocking of pericellular proteolysis.
    J Cell Biol. 2003 Jan 20;160(2):267-77 PMID: 12527751
  49. Interlaboratory round robin on cantilever calibration for AFM force spectroscopy.
    Ultramicroscopy. 2011 Dec;111(12):1659-69 PMID: 22094372
  50. Cell motility and mechanics in three-dimensional collagen matrices.
    Annu Rev Cell Dev Biol. 2010;26:335-61 PMID: 19575667
  51. Migration of highly aggressive MV3 melanoma cells in 3-dimensional collagen lattices results in local matrix reorganization and shedding of alpha2 and beta1 integrins and CD44.
    Cancer Res. 1997 May 15;57(10):2061-70 PMID: 9158006
  52. Cellular dynamics visualized in live cells in vitro and in vivo by differential dual-color nuclear-cytoplasmic fluorescent-protein expression.
    Cancer Res. 2004 Jun 15;64(12):4251-6 PMID: 15205338
  53. The tumor suppressor functions of p27(kip1) include control of the mesenchymal/amoeboid transition.
    Mol Cell Biol. 2009 Sep;29(18):5031-45 PMID: 19596789
  54. Cell migration: integrating signals from front to back.
    Science. 2003 Dec 5;302(5651):1704-9 PMID: 14657486
  55. Collagen self-assembly in vitro. Differentiating specific telopeptide-dependent interactions using selective enzyme modification and the addition of free amino telopeptide.
    J Biol Chem. 1981 Jul 25;256(14):7118-28 PMID: 7251588
  56. Collagen I but not Matrigel matrices provide an MMP-dependent barrier to ovarian cancer cell penetration.
    BMC Cancer. 2008 Aug 05;8:223 PMID: 18681958
  57. A blind spot in confocal reflection microscopy: the dependence of fiber brightness on fiber orientation in imaging biopolymer networks.
    Biophys J. 2010 Feb 3;98(3):L1-3 PMID: 20141747
  58. Extracellular matrix determinants of proteolytic and non-proteolytic cell migration.
    Trends Cell Biol. 2011 Dec;21(12):736-44 PMID: 22036198
  59. Development of real-time subcellular dynamic multicolor imaging of cancer-cell trafficking in live mice with a variable-magnification whole-mouse imaging system.
    Cancer Res. 2006 Apr 15;66(8):4208-14 PMID: 16618743
  60. The role of myosin II in glioma invasion of the brain.
    Mol Biol Cell. 2008 Aug;19(8):3357-68 PMID: 18495866
  61. Migration of tumor cells in 3D matrices is governed by matrix stiffness along with cell-matrix adhesion and proteolysis.
    Proc Natl Acad Sci U S A. 2006 Jul 18;103(29):10889-94 PMID: 16832052
  62. MT1-MMP- and Cdc42-dependent signaling co-regulate cell invasion and tunnel formation in 3D collagen matrices.
    J Cell Sci. 2009 Dec 15;122(Pt 24):4558-69 PMID: 19934222
  63. Physical confinement alters tumor cell adhesion and migration phenotypes.
    FASEB J. 2012 Oct;26(10):4045-56 PMID: 22707566
  64. Monocytes and neutrophils exhibit both distinct and common mechanisms in penetrating the vascular basement membrane in vivo.
    Arterioscler Thromb Vasc Biol. 2009 Aug;29(8):1193-9 PMID: 19498176
  65. Chemotaxis of cell populations through confined spaces at single-cell resolution.
    PLoS One. 2012;7(1):e29211 PMID: 22279529
  66. Rac activation and inactivation control plasticity of tumor cell movement.
    Cell. 2008 Oct 31;135(3):510-23 PMID: 18984162
  67. Noninvasive assessment of collagen gel microstructure and mechanics using multiphoton microscopy.
    Biophys J. 2007 Mar 15;92(6):2212-22 PMID: 17172303
  68. Robust strategies for automated AFM force curve analysis--I. Non-adhesive indentation of soft, inhomogeneous materials.
    J Biomech Eng. 2007 Jun;129(3):430-40 PMID: 17536911
  69. Mac-1 (CD11b/CD18) is essential for Fc receptor-mediated neutrophil cytotoxicity and immunologic synapse formation.
    Blood. 2001 Apr 15;97(8):2478-86 PMID: 11290613
  70. Intravital third harmonic generation microscopy of collective melanoma cell invasion: Principles of interface guidance and microvesicle dynamics.
    Intravital. 2012 Jul 01;1(1):32-43 PMID: 29607252
  71. MT1-MMP is the critical determinant of matrix degradation and invasion by ovarian cancer cells.
    Br J Cancer. 2007 Aug 6;97(3):358-67 PMID: 17609667
  72. The regulatory role of cell mechanics for migration of differentiating myeloid cells.
    Proc Natl Acad Sci U S A. 2009 Sep 15;106(37):15696-701 PMID: 19717452
  73. Nuclear mechanics during cell migration.
    Curr Opin Cell Biol. 2011 Feb;23(1):55-64 PMID: 21109415
Article Info
Journal
The Journal of cell biology
Abbr.
J Cell Biol
ISSN
1540-8140
Published
2013-06-24
Pages
1069-84
Language
English
Region
United States
NLM ID
0375356
PMCID
PMC3691458
Subset
IM
Grants
NCI NIH HHS · R01 CA71699 · United States
NCI NIH HHS · R01 CA088308 · United States
NIDDK NIH HHS · P30 DK020572 · United States
NCI NIH HHS · R01 CA071699 · United States
NCI NIH HHS · R01 CA88308 · United States
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