Abstract
Free full text
Simulations of cell-surface integrin binding to nanoscale-clustered adhesion ligands.
Abstract
Clustering of ligated integrins strongly influences integrin signaling and mechanical linkages between integrins and intracellular structures. Extracellular spatial organization of integrin ligands in clusters may facilitate clustering of bound integrins and thus potentially regulate cellular responses to a defined average amount of ligand in the extracellular environment. The possible role of such ligand clustering effects in controlling overall receptor occupancy is studied here using a simple mass-action equilibrium model as well as a two-dimensional Monte Carlo lattice description of the cell-substrate interface, where cell surface receptors are free to diffuse in the plane of the interface and interact with the substrate-immobilized ligand. Results from the analytical treatment and simulation data indicate that for a single-state model in which receptor-ligand binding equilibria are not influenced by neighboring complexes, clustering of ligand does not enhance total receptor binding. However, if receptor binding energy increases in the presence of neighboring ligated receptors, strong ligand spatial distribution effects arise. Nonlinear responses to increasing ligand density are also observed even in the case of random ligand placement due to stochastic juxtaposition of ligand molecules. These results describe how spatial distribution of ligand presented by the extracellular matrix or by synthetic biomimetic materials might control cell responses to external ligands, and suggest a feedback mechanism by which focal contact formation might be initiated.
Full Text
Selected References
These references are in PubMed. This may not be the complete list of references from this article.
- Adams JC. Cell-matrix contact structures. Cell Mol Life Sci. 2001 Mar;58(3):371–392. [Europe PMC free article] [Abstract] [Google Scholar]
- Aplin AE, Howe A, Alahari SK, Juliano RL. Signal transduction and signal modulation by cell adhesion receptors: the role of integrins, cadherins, immunoglobulin-cell adhesion molecules, and selectins. Pharmacol Rev. 1998 Jun;50(2):197–263. [Abstract] [Google Scholar]
- Aukhil I, Joshi P, Yan Y, Erickson HP. Cell- and heparin-binding domains of the hexabrachion arm identified by tenascin expression proteins. J Biol Chem. 1993 Feb 5;268(4):2542–2553. [Abstract] [Google Scholar]
- Banerjee P, Irvine DJ, Mayes AM, Griffith LG. Polymer latexes for cell-resistant and cell-interactive surfaces. J Biomed Mater Res. 2000 Jun 5;50(3):331–339. [Abstract] [Google Scholar]
- Bell GI, Dembo M, Bongrand P. Cell adhesion. Competition between nonspecific repulsion and specific bonding. Biophys J. 1984 Jun;45(6):1051–1064. [Europe PMC free article] [Abstract] [Google Scholar]
- Burridge K, Chrzanowska-Wodnicka M. Focal adhesions, contractility, and signaling. Annu Rev Cell Dev Biol. 1996;12:463–518. [Abstract] [Google Scholar]
- Chesla SE, Selvaraj P, Zhu C. Measuring two-dimensional receptor-ligand binding kinetics by micropipette. Biophys J. 1998 Sep;75(3):1553–1572. [Europe PMC free article] [Abstract] [Google Scholar]
- Chi-Rosso G, Gotwals PJ, Yang J, Ling L, Jiang K, Chao B, Baker DP, Burkly LC, Fawell SE, Koteliansky VE. Fibronectin type III repeats mediate RGD-independent adhesion and signaling through activated beta1 integrins. J Biol Chem. 1997 Dec 12;272(50):31447–31452. [Abstract] [Google Scholar]
- Chothia C, Jones EY. The molecular structure of cell adhesion molecules. Annu Rev Biochem. 1997;66:823–862. [Abstract] [Google Scholar]
- Clark EA, Brugge JS. Integrins and signal transduction pathways: the road taken. Science. 1995 Apr 14;268(5208):233–239. [Abstract] [Google Scholar]
- Danen EH, Aota S, van Kraats AA, Yamada KM, Ruiter DJ, van Muijen GN. Requirement for the synergy site for cell adhesion to fibronectin depends on the activation state of integrin alpha 5 beta 1. J Biol Chem. 1995 Sep 15;270(37):21612–21618. [Abstract] [Google Scholar]
- Danilov YN, Juliano RL. (Arg-Gly-Asp)n-albumin conjugates as a model substratum for integrin-mediated cell adhesion. Exp Cell Res. 1989 May;182(1):186–196. [Abstract] [Google Scholar]
- De Panfilis G, Ghidini A, Graifemberghi S, Barlati S, Zoppi N, Colombi M. Dexamethasone-induced healing of chronic leg ulcers in a patient with defective organization of the extracellular matrix of fibronectin. Br J Dermatol. 2000 Jan;142(1):166–170. [Abstract] [Google Scholar]
- Dembo M, Torney DC, Saxman K, Hammer D. The reaction-limited kinetics of membrane-to-surface adhesion and detachment. Proc R Soc Lond B Biol Sci. 1988 Jun 22;234(1274):55–83. [Abstract] [Google Scholar]
- Duband JL, Nuckolls GH, Ishihara A, Hasegawa T, Yamada KM, Thiery JP, Jacobson K. Fibronectin receptor exhibits high lateral mobility in embryonic locomoting cells but is immobile in focal contacts and fibrillar streaks in stationary cells. J Cell Biol. 1988 Oct;107(4):1385–1396. [Europe PMC free article] [Abstract] [Google Scholar]
- Frelinger AL, 3rd, Du XP, Plow EF, Ginsberg MH. Monoclonal antibodies to ligand-occupied conformers of integrin alpha IIb beta 3 (glycoprotein IIb-IIIa) alter receptor affinity, specificity, and function. J Biol Chem. 1991 Sep 15;266(26):17106–17111. [Abstract] [Google Scholar]
- Friedl P, Bröcker EB. The biology of cell locomotion within three-dimensional extracellular matrix. Cell Mol Life Sci. 2000 Jan 20;57(1):41–64. [Europe PMC free article] [Abstract] [Google Scholar]
- Ginsberg MH, Du X, Plow EF. Inside-out integrin signalling. Curr Opin Cell Biol. 1992 Oct;4(5):766–771. [Abstract] [Google Scholar]
- Hato T, Pampori N, Shattil SJ. Complementary roles for receptor clustering and conformational change in the adhesive and signaling functions of integrin alphaIIb beta3. J Cell Biol. 1998 Jun 29;141(7):1685–1695. [Europe PMC free article] [Abstract] [Google Scholar]
- Huttenlocher A, Ginsberg MH, Horwitz AF. Modulation of cell migration by integrin-mediated cytoskeletal linkages and ligand-binding affinity. J Cell Biol. 1996 Sep;134(6):1551–1562. [Europe PMC free article] [Abstract] [Google Scholar]
- Hynes RO. Cell adhesion: old and new questions. Trends Cell Biol. 1999 Dec;9(12):M33–M37. [Abstract] [Google Scholar]
- Hynes RO, Yamada KM. Fibronectins: multifunctional modular glycoproteins. J Cell Biol. 1982 Nov;95(2 Pt 1):369–377. [Europe PMC free article] [Abstract] [Google Scholar]
- Irvine DJ, Mayes AM, Griffith LG. Nanoscale clustering of RGD peptides at surfaces using Comb polymers. 1. Synthesis and characterization of Comb thin films. Biomacromolecules. 2001 Spring;2(1):85–94. [Abstract] [Google Scholar]
- Knight B, Laukaitis C, Akhtar N, Hotchin NA, Edlund M, Horwitz AR. Visualizing muscle cell migration in situ. Curr Biol. 2000 May 18;10(10):576–585. [Abstract] [Google Scholar]
- Kornberg LJ, Earp HS, Turner CE, Prockop C, Juliano RL. Signal transduction by integrins: increased protein tyrosine phosphorylation caused by clustering of beta 1 integrins. Proc Natl Acad Sci U S A. 1991 Oct 1;88(19):8392–8396. [Europe PMC free article] [Abstract] [Google Scholar]
- LaFlamme SE, Akiyama SK, Yamada KM. Regulation of fibronectin receptor distribution. J Cell Biol. 1992 Apr;117(2):437–447. [Europe PMC free article] [Abstract] [Google Scholar]
- Lauffenburger DA, Horwitz AF. Cell migration: a physically integrated molecular process. Cell. 1996 Feb 9;84(3):359–369. [Abstract] [Google Scholar]
- Lotz MM, Burdsal CA, Erickson HP, McClay DR. Cell adhesion to fibronectin and tenascin: quantitative measurements of initial binding and subsequent strengthening response. J Cell Biol. 1989 Oct;109(4 Pt 1):1795–1805. [Europe PMC free article] [Abstract] [Google Scholar]
- Maheshwari G, Brown G, Lauffenburger DA, Wells A, Griffith LG. Cell adhesion and motility depend on nanoscale RGD clustering. J Cell Sci. 2000 May;113(Pt 10):1677–1686. [Abstract] [Google Scholar]
- Massia SP, Hubbell JA. An RGD spacing of 440 nm is sufficient for integrin alpha V beta 3-mediated fibroblast spreading and 140 nm for focal contact and stress fiber formation. J Cell Biol. 1991 Sep;114(5):1089–1100. [Europe PMC free article] [Abstract] [Google Scholar]
- Miyamoto S, Akiyama SK, Yamada KM. Synergistic roles for receptor occupancy and aggregation in integrin transmembrane function. Science. 1995 Feb 10;267(5199):883–885. [Abstract] [Google Scholar]
- Miyamoto S, Teramoto H, Coso OA, Gutkind JS, Burbelo PD, Akiyama SK, Yamada KM. Integrin function: molecular hierarchies of cytoskeletal and signaling molecules. J Cell Biol. 1995 Nov;131(3):791–805. [Europe PMC free article] [Abstract] [Google Scholar]
- Miyamoto S, Teramoto H, Gutkind JS, Yamada KM. Integrins can collaborate with growth factors for phosphorylation of receptor tyrosine kinases and MAP kinase activation: roles of integrin aggregation and occupancy of receptors. J Cell Biol. 1996 Dec;135(6 Pt 1):1633–1642. [Europe PMC free article] [Abstract] [Google Scholar]
- Nomizu M, Kuratomi Y, Malinda KM, Song SY, Miyoshi K, Otaka A, Powell SK, Hoffman MP, Kleinman HK, Yamada Y. Cell binding sequences in mouse laminin alpha1 chain. J Biol Chem. 1998 Dec 4;273(49):32491–32499. [Abstract] [Google Scholar]
- Oh ES, Woods A, Couchman JR. Multimerization of the cytoplasmic domain of syndecan-4 is required for its ability to activate protein kinase C. J Biol Chem. 1997 May 2;272(18):11805–11811. [Abstract] [Google Scholar]
- Pelham RJ, Jr, Wang Y l. Cell locomotion and focal adhesions are regulated by substrate flexibility. Proc Natl Acad Sci U S A. 1997 Dec 9;94(25):13661–13665. [Europe PMC free article] [Abstract] [Google Scholar]
- Piper JW, Swerlick RA, Zhu C. Determining force dependence of two-dimensional receptor-ligand binding affinity by centrifugation. Biophys J. 1998 Jan;74(1):492–513. [Europe PMC free article] [Abstract] [Google Scholar]
- Ruoslahti E. RGD and other recognition sequences for integrins. Annu Rev Cell Dev Biol. 1996;12:697–715. [Abstract] [Google Scholar]
- Schmidt CE, Horwitz AF, Lauffenburger DA, Sheetz MP. Integrin-cytoskeletal interactions in migrating fibroblasts are dynamic, asymmetric, and regulated. J Cell Biol. 1993 Nov;123(4):977–991. [Europe PMC free article] [Abstract] [Google Scholar]
- Segel LA, Volk T, Geiger B. On spatial periodicity in the formation of cell adhesions to a substrate. Cell Biophys. 1983 Jun;5(2):95–104. [Abstract] [Google Scholar]
- Shaw LM, Messier JM, Mercurio AM. The activation dependent adhesion of macrophages to laminin involves cytoskeletal anchoring and phosphorylation of the alpha 6 beta 1 integrin. J Cell Biol. 1990 Jun;110(6):2167–2174. [Europe PMC free article] [Abstract] [Google Scholar]
- Spring J, Beck K, Chiquet-Ehrismann R. Two contrary functions of tenascin: dissection of the active sites by recombinant tenascin fragments. Cell. 1989 Oct 20;59(2):325–334. [Abstract] [Google Scholar]
- Ward MD, Hammer DA. A theoretical analysis for the effect of focal contact formation on cell-substrate attachment strength. Biophys J. 1993 Mar;64(3):936–959. [Europe PMC free article] [Abstract] [Google Scholar]
- Ward MD, Hammer DA. Focal contact assembly through cytoskeletal polymerization: steady state analysis. J Math Biol. 1994;32(7):677–704. [Abstract] [Google Scholar]
- Wary KK, Mariotti A, Zurzolo C, Giancotti FG. A requirement for caveolin-1 and associated kinase Fyn in integrin signaling and anchorage-dependent cell growth. Cell. 1998 Sep 4;94(5):625–634. [Abstract] [Google Scholar]
- Weber PC, Ohlendorf DH, Wendoloski JJ, Salemme FR. Structural origins of high-affinity biotin binding to streptavidin. Science. 1989 Jan 6;243(4887):85–88. [Abstract] [Google Scholar]
- Wei Y, Yang X, Liu Q, Wilkins JA, Chapman HA. A role for caveolin and the urokinase receptor in integrin-mediated adhesion and signaling. J Cell Biol. 1999 Mar 22;144(6):1285–1294. [Europe PMC free article] [Abstract] [Google Scholar]
- Xiao Y, Truskey GA. Effect of receptor-ligand affinity on the strength of endothelial cell adhesion. Biophys J. 1996 Nov;71(5):2869–2884. [Europe PMC free article] [Abstract] [Google Scholar]
- Xie H, Pallero MA, Gupta K, Chang P, Ware MF, Witke W, Kwiatkowski DJ, Lauffenburger DA, Murphy-Ullrich JE, Wells A. EGF receptor regulation of cell motility: EGF induces disassembly of focal adhesions independently of the motility-associated PLCgamma signaling pathway. J Cell Sci. 1998 Mar;111(Pt 5):615–624. [Abstract] [Google Scholar]
- Yamada KM, Aota S, Akiyama SK, LaFlamme SE. Mechanisms of fibronectin and integrin function during cell adhesion and migration. Cold Spring Harb Symp Quant Biol. 1992;57:203–212. [Abstract] [Google Scholar]
- Yauch RL, Felsenfeld DP, Kraeft SK, Chen LB, Sheetz MP, Hemler ME. Mutational evidence for control of cell adhesion through integrin diffusion/clustering, independent of ligand binding. J Exp Med. 1997 Oct 20;186(8):1347–1355. [Europe PMC free article] [Abstract] [Google Scholar]
- Zamir E, Katz BZ, Aota S, Yamada KM, Geiger B, Kam Z. Molecular diversity of cell-matrix adhesions. J Cell Sci. 1999 Jun;112(Pt 11):1655–1669. [Abstract] [Google Scholar]
Articles from Biophysical Journal are provided here courtesy of The Biophysical Society
Full text links
Read article at publisher's site: https://doi.org/10.1016/s0006-3495(02)75379-4
Read article for free, from open access legal sources, via Unpaywall: http://www.cell.com/article/S0006349502753794/pdf
Citations & impact
Impact metrics
Citations of article over time
Alternative metrics
Smart citations by scite.ai
Explore citation contexts and check if this article has been
supported or disputed.
https://scite.ai/reports/10.1016/s0006-3495(02)75379-4
Article citations
Mechanistic Insights into Membrane Protein Clustering Revealed by Visualizing EGFR Secretion.
Research (Wash D C), 2022:9835035, 16 Oct 2022
Cited by: 3 articles | PMID: 36340505 | PMCID: PMC9620640
Viscoelasticity, Like Forces, Plays a Role in Mechanotransduction.
Front Cell Dev Biol, 10:789841, 09 Feb 2022
Cited by: 13 articles | PMID: 35223831 | PMCID: PMC8864183
Review Free full text in Europe PMC
Win, Lose, or Tie: Mathematical Modeling of Ligand Competition at the Cell-Extracellular Matrix Interface.
Front Bioeng Biotechnol, 9:657244, 29 Apr 2021
Cited by: 4 articles | PMID: 33996781 | PMCID: PMC8117103
Effect of TiO2 Nanotube Pore Diameter on Human Mesenchymal Stem Cells and Human Osteoblasts.
Nanomaterials (Basel), 10(11):E2117, 25 Oct 2020
Cited by: 8 articles | PMID: 33113757 | PMCID: PMC7692029
Integrin Subtypes and Nanoscale Ligand Presentation Influence Drug Sensitivity in Cancer Cells.
Nano Lett, 20(2):1183-1191, 10 Jan 2020
Cited by: 20 articles | PMID: 31908168 | PMCID: PMC7020138
Go to all (66) article citations
Similar Articles
To arrive at the top five similar articles we use a word-weighted algorithm to compare words from the Title and Abstract of each citation.
Cell adhesion nucleation regulated by substrate stiffness: a Monte Carlo study.
J Biomech, 45(1):116-122, 20 Oct 2011
Cited by: 21 articles | PMID: 22015238
Integrin dimerization and ligand organization: key components in integrin clustering for cell adhesion.
Tissue Eng, 11(5-6):865-876, 01 May 2005
Cited by: 21 articles | PMID: 15998226
Cell adhesion and motility depend on nanoscale RGD clustering.
J Cell Sci, 113 ( Pt 10):1677-1686, 01 May 2000
Cited by: 415 articles | PMID: 10769199
Integrins in cell adhesion and signaling.
Hum Cell, 9(3):181-186, 01 Sep 1996
Cited by: 126 articles | PMID: 9183647
Review