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PMID: 15972807 Published · ppublish English Comparative Study Journal Article Research Support, U.S. Gov't, Non-P.H.S.

Mechanics of receptor-mediated endocytosis.

Gao H, Shi W, Freund LB

Abstract

Most viruses and bioparticles endocytosed by cells have characteristic sizes in the range of tens to hundreds of nanometers. The process of viruses entering and leaving animal cells is mediated by the binding interaction between ligand molecules on the viral capid and their receptor molecules on the cell membrane. How does the size of a bioparticle affect receptor-mediated endocytosis? Here, we study how a cell membrane containing diffusive mobile receptors wraps around a ligand-coated cylindrical or spherical particle. It is shown that particles in the size range of tens to hundreds of nanometers can enter or exit cells via wrapping even in the absence of clathrin or caveolin coats, and an optimal particles size exists for the smallest wrapping time. This model can also be extended to include the effect of clathrin coat. The results seem to show broad agreement with experimental observations.

MeSH Terms
Capsid Proteins/metabolism Endocytosis/physiology Ligands Models, Biological Particle Size Receptors, Cell Surface/metabolism Viruses/metabolism
Chemicals
Capsid Proteins Ligands Receptors, Cell Surface
Authors & Affiliations
3 authors, click to expand affiliations / ORCID
Gao Huajian
Max Planck Institute for Metals Research, Heisenbergstrasse 3, D-70569 Stuttgart, Germany. hjgao@mf.mpg.de
Shi Wendong
Freund Lambert B
References (25)
25 references, click to expand
  1. Kinetics of membrane adhesion mediated by ligand-receptor interaction studied with a biomimetic system.
    Biophys J. 2001 Nov;81(5):2743-51 PMID: 11606287
  2. The mechanism of uptake of biodegradable microparticles in Caco-2 cells is size dependent.
    Pharm Res. 1997 Nov;14(11):1568-73 PMID: 9434276
  3. Size-dependency of nanoparticle-mediated gene transfection: studies with fractionated nanoparticles.
    Int J Pharm. 2002 Sep 5;244(1-2):105-15 PMID: 12204570
  4. Influenza virus can enter and infect cells in the absence of clathrin-mediated endocytosis.
    J Virol. 2002 Oct;76(20):10455-64 PMID: 12239322
  5. Artificial viruses and their application to gene delivery. Size-controlled gene coating with glycocluster nanoparticles.
    J Am Chem Soc. 2003 Mar 26;125(12):3455-7 PMID: 12643707
  6. Do lipid rafts mediate virus assembly and pseudotyping?
    J Gen Virol. 2003 Apr;84(Pt 4):757-68 PMID: 12655075
  7. Remarkably size-regulated cell invasion by artificial viruses. Saccharide-dependent self-aggregation of glycoviruses and its consequences in glycoviral gene delivery.
    J Am Chem Soc. 2003 Jul 16;125(28):8465-75 PMID: 12848552
  8. Pulmonary toxicity of single-wall carbon nanotubes in mice 7 and 90 days after intratracheal instillation.
    Toxicol Sci. 2004 Jan;77(1):126-34 PMID: 14514958
  9. Comparative pulmonary toxicity assessment of single-wall carbon nanotubes in rats.
    Toxicol Sci. 2004 Jan;77(1):117-25 PMID: 14514968
  10. Translocation of bioactive peptides across cell membranes by carbon nanotubes.
    Chem Commun (Camb). 2004 Jan 7;(1):16-7 PMID: 14737310
  11. A statistical-thermodynamic model of viral budding.
    Biophys J. 2004 Apr;86(4):2037-48 PMID: 15041646
  12. Understanding nature's design for a nanosyringe.
    Proc Natl Acad Sci U S A. 2004 Mar 30;101(13):4431-4 PMID: 15070735
  13. A quantum dot conjugated sugar ball and its cellular uptake. On the size effects of endocytosis in the subviral region.
    J Am Chem Soc. 2004 Jun 2;126(21):6520-1 PMID: 15161257
  14. Nanotube molecular transporters: internalization of carbon nanotube-protein conjugates into Mammalian cells.
    J Am Chem Soc. 2004 Jun 9;126(22):6850-1 PMID: 15174838
  15. Endocytosis of influenza viruses.
    Microbes Infect. 2004 Aug;6(10):929-36 PMID: 15310470
  16. Functionalized carbon nanotubes for plasmid DNA gene delivery.
    Angew Chem Int Ed Engl. 2004 Oct 4;43(39):5242-6 PMID: 15455428
  17. Spontaneous-curvature theory of clathrin-coated membranes.
    Biophys J. 1998 Jun;74(6):2862-75 PMID: 9635740
  18. Growth and shape stability of a biological membrane adhesion complex in the diffusion-mediated regime.
    Proc Natl Acad Sci U S A. 2005 Mar 1;102(9):3213-8 PMID: 15728395
  19. Elastic properties of lipid bilayers: theory and possible experiments.
    Z Naturforsch C. 1973 Nov-Dec;28(11):693-703 PMID: 4273690
  20. Location of the spike glycoproteins in the Semliki Forest virus membrane.
    Proc Natl Acad Sci U S A. 1974 Oct;71(10):3988-92 PMID: 4530279
  21. Models for the specific adhesion of cells to cells.
    Science. 1978 May 12;200(4342):618-27 PMID: 347575
  22. The budding mechanisms of enveloped animal viruses.
    J Gen Virol. 1980 Sep;50(1):1-21 PMID: 6255080
  23. Density of newly synthesized plasma membrane proteins in intracellular membranes II. Biochemical studies.
    J Cell Biol. 1984 Jun;98(6):2142-7 PMID: 6563038
  24. How does a virus bud?
    Biophys J. 1993 Jul;65(1):73-9 PMID: 8369463
  25. Biomedical applications of nanotechnology--implications for drug targeting and gene therapy.
    Trends Biotechnol. 1997 Jun;15(6):217-24 PMID: 9183864
Article Info
Journal
Proceedings of the National Academy of Sciences of the United States of America
Abbr.
Proc Natl Acad Sci U S A
ISSN
0027-8424
Published
2005-07-05
Epub
2005-00-22
Pages
9469-74
Language
English
Region
United States
NLM ID
7505876
PMCID
PMC1172266
Subset
IM
Corrections
CommentIn
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