NESAC/BIO provides the biomedical research community with state-of- the art surface analysis expertise, instrumentation, experimental protocols, and data analysis methods to address biological and medical problems involving the surface and interfacial regions. Since the nature of the surface strongly influences the composition and recognizability of the adsorbed protein layer and the subsequent cellular interactions, understanding the structure of surfaces and the nature of adsorbed protein films are key links in understanding interfacial biology. ESCA, static SIMS, and SPM provide a powerful set of set of complementary techniques for addressing the challenges and complexity of the new generation of biomaterials being developed with molecular recognition principles.
The specific aims of the Technological Research and development projects are: 1) Surface Analysis Standards for Technique Development, 2) Chemical State Imaging Technique Development and, and 3) Characterization of Proteins at Surfaces and Interfaces. Over the next five years the focus of NESAC/BIO will expand from spectroscopic analysis to include image analysis. Multivariate analysis methods will be developed to enhance our ability to obtain chemical state images at high spatial resolution. Standards used in the development of these techniques will include self-assembled monolayers, peptides, and ordered proteins.
The specific aim of the Collaborative research projects is to use the surface analysis techniques and methods developed in the TRD projects to address important biomedical research problems. The areas of investigation include biosensors, tissue engineering, self-assembled films, biomineralization, cell growth surfaces with peptides, antibacterial polyurethane surfaces, novel surfactants for controlling biomolecule adhesion, coated vascular stents, and biomaterials with specific recognition sites. NESAC/BIO Service activities will focus on the development and optimization of biomedical devices. Current biomedical device service projects include cochlear implants, glucose sensors, and coated guidewires. Dissemination efforts will focus on scientific publications, presentations at scientific meetings, a yearly newsletter, booths a key national meetings, and the NESAC/BIO Website. Training projects will include a three-day short course offered at the University of Washington each year on biomedical surface analysis along with one-on- one instrument and data analysis training.

Agency
National Institute of Health (NIH)
Institute
National Institute of Biomedical Imaging and Bioengineering (NIBIB)
Type
Biotechnology Resource Grants (P41)
Project #
8P41EB002027-19
Application #
6656278
Study Section
Special Emphasis Panel (ZRG1-SSS-8 (56))
Program Officer
Moy, Peter
Project Start
1983-09-01
Project End
2004-08-31
Budget Start
2003-09-01
Budget End
2004-08-31
Support Year
19
Fiscal Year
2003
Total Cost
$934,246
Indirect Cost
Name
University of Washington
Department
Engineering (All Types)
Type
Schools of Engineering
DUNS #
605799469
City
Seattle
State
WA
Country
United States
Zip Code
98195
Johansson, Patrik K; Schmüser, Lars; Castner, David G (2018) Nonlinear Optical Methods for Characterization of Molecular Structure and Surface Chemistry. Top Catal 61:1101-1124
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Castner, David G (2018) Surface Analysis: From Single Crystals to Biomaterials. Surf Interface Anal 50:981-990
Killian, Manuela S; Taylor, Adam J; Castner, David G (2018) Stabilization of dry protein coatings with compatible solutes. Biointerphases 13:06E401
Roeters, Steven J; Tronic, Elaine H; Baio, Joe E et al. (2018) Structure of von Willebrand factor A1 on polystyrene determined from experimental and calculated sum frequency generation spectra. Biointerphases 13:06E411
Taylor, Michael J; Aitchison, Hannah; Hawker, Morgan J et al. (2018) Time of flight secondary ion mass spectrometry-A method to evaluate plasma-modified three-dimensional scaffold chemistry. Biointerphases 13:03B415

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