| Literature DB >> 20596391 |
J S Barbosa, R R Costa, A M Testera, M Alonso, J C Rodríguez-Cabello, J F Mano.
Abstract
Electrostatic self-assembly was used to fabricate new smart multi-layer coatings, using a recombinant elastin-like polymer (ELP) and chitosan as the counterion macromolecule. The ELP was bioproduced, purified and its purity and expected molecular weight were assessed. Aggregate size measurements, obtained by light scattering of dissolved ELP, were performed as a function of temperature and pH to assess the smart properties of the polymer. The build-up of multi-layered films containing ELP and chitosan, using a layer-by-layer methodology, was followed by quartz-crystal microbalance with dissipation monitoring. Atomic force microscopy analysis permitted to demonstrate that the topography of the multi-layered films could respond to temperature. This work opens new possibilities for the use of ELPs in the fabrication of biodegradable smart coatings and films, offering new platforms in biotechnology and in the biomedical area.Entities:
Year: 2009 PMID: 20596391 PMCID: PMC2894142 DOI: 10.1007/s11671-009-9388-5
Source DB: PubMed Journal: Nanoscale Res Lett ISSN: 1556-276X Impact factor: 4.703
Figure 1Polymer’s purity and molecular weight assessments:aSDS–PAGE andbMALDI-TOF
Figure 2aTransition temperature (□) and enthalpy (■) obtained from DSC scans; inset represents DSC curve for pH = 7.36;baggregation size profile obtained from size measurement andcturbidity change of the solution used for size determination
Figure 3aFrequency changes during LbL chitosan-HAP build-up: 1-Cht deposition, 2-rinsing, 3-H AP deposition and 4-rinsing.bDissipation changes during LbL chitosan-HAP build-up: 1-Cht deposition, 2-rinsing, 3-H AP deposition, and 4-rinsing. The 5th (squares), 7th (circles) and 9th (triangles) overtones are represented.cChange in the film’s thickness during LbL build-up: cht (squares) and HAP (circles)
Figure 4AFM surface characterization:a(Cht-HAP)5underTandb(Cht-HAP)5aboveT(two magnifications)