4.7 Article

A bioactive elastin-like recombinamer reduces unspecific protein adsorption and enhances cell response on titanium surfaces

期刊

COLLOIDS AND SURFACES B-BIOINTERFACES
卷 114, 期 -, 页码 225-233

出版社

ELSEVIER
DOI: 10.1016/j.colsurfb.2013.10.008

关键词

Biomimetic; Protein immobilization; Protein resistance; Biofunctionalization; Bioactivity; Cell response

资金

  1. Commission of the European Communities: Marie Curie Research Training Network [BioPolySur-MRTN-CT-2004 005516f]
  2. European Commission [HEALTH-F4-2011-278557, NMP3-LA-2011-263363]
  3. Spanish Ministry of Science and Innovation [MAT 2008-06887-C03-03]
  4. Juan de la Cierva [JCI-2008-2940]
  5. Junta de Castilla y Leon-JCyL [VA034A09, VA0049A11-2]
  6. CIBER-BBN [CB06-01-1038]
  7. Junta de Castilla y Leon
  8. Instituto de Salud Carlos III under the Network Center of Regenerative Medicine and Cellular Therapy of Castilla and Leon
  9. Office of the Vice President for Research of the University of Minnesota [55466]
  10. [MAT2009-14195-C03-03]
  11. [MAT-2010-15982]
  12. [MAT2010-15310]
  13. [IT2009-0089]
  14. [ACI2009-0890]
  15. [PRI-PIBAR-2011-1403]

向作者/读者索取更多资源

We present the immobilization on synthetic substrates of elastin-like recombinamers (ELR) that combine a bioactive motif for cell adhesion with protein antifouling properties. Physical adsorption of the recombinamers and covalent-grafting through organosilane chemistry were investigated. The biochemically-modified surfaces were thoroughly characterized and tested for protein absorption in serum by fluorescence-labelling, XPS, Ellipsometry, and OWLS. The ELR were successfully grafted and stable, even upon mechanical stresses; being the covalent bonding favourable over physical adsorption. The coated metal surfaces exhibited excellent reduction of serum protein adsorption (9 ng/cm(2)) compared to the bare metal surface (310 ng/cm(2)). Non-specific protein adsorption may mask the introduced bioactive motifs; therefore, the bioactivated surfaces should display serum-protein antifouling properties. Finally, improved hMSCs response was assessed on the bioactivated substrates. In summary, the coatings simultaneously displayed anti-fouling and bioactive properties. These studies investigated key factors to enhance tissue material interactions fundamental for the design of bioactive devices and future biomedical applications. (C) 2013 Elsevier B.V. All rights reserved.

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