Christine Müller
Kaiserslautern University of Technology
Network
Latest external collaboration on country level. Dive into details by clicking on the dots.
Publication
Featured researches published by Christine Müller.
Langmuir | 2010
Christine Müller; Anne Lüders; Wiebke Hoth-Hannig; Matthias Hannig; Christiane Ziegler
The adsorption of bovine serum albumin (BSA) on surfaces of dental enamel and of dental materials was investigated by scanning force spectroscopy. This method provides adhesion forces which can be measured as a function of contact time between protein and surface, pH, wettability, and isoelectric point of the surface. Whereas the chosen ceramic and composite materials resemble very well the adhesion on natural enamel, a much stronger adhesion was found for the more hydrophobic surfaces, that is, gold, titanium, poly(methyl methacrylate) (PMMA), and poly(tetrafluoroethylene) (PTFE). On hydrophilic surfaces, adhesion is mainly influenced by the electrostatic forces between protein and surface. However, the conformational change of BSA at pH values above pH 8 has to be taken into account. On the very hydrophobic PTFE surface, the special interface structure between PTFE and water plays an important role which governs BSA adhesion.
Analytical and Bioanalytical Chemistry | 2011
Christine Müller; Johanna Wald; Wiebke Hoth-Hannig; Natalia Umanskaya; Daniel Scholz; Matthias Hannig; Christiane Ziegler
Protein adsorption is a field of huge interest in a number of application fields. Information on protein adhesion is accessible by a variety of methods. However, the results obtained are significantly influenced by the applied technique. The objective of this work was to understand the role of adhesion forces (obtained by scanning force spectroscopy, SFS) in the process of protein adsorption and desorption. In SFS, the protein is forced to and retracted from the surface, even under unfavorable conditions, in contrast to the natural situation. Furthermore, adhesion forces are correlated with adhesion energies, neglecting the entropic part in the Gibbs enthalpy. In this context, dynamic contact angle (DCA) measurements were performed to identify the potential of this method to complement SFS data. In DCA measurements, the protein diffuses voluntarily to the surface and information on surface coverage and reversibility of adsorption is obtained, including entropic effects (conformational changes and hydrophobic effect). It could be shown that the surface coverage (by DCA) of bovine serum albumin on dental materials correlates well with the adhesion forces (by SFS) if no hydrophobic surface is involved. On those, the entropic hydrophobic effect plays a major role. As a second task, the reversibility of the protein adsorption, i.e., the voluntary desorption as studied by DCA, was compared to the adhesion forces. Here, a correlation between low adhesion forces and good reversibility could be found as long as no covalent bonds were involved. The comparative study of DCA and SFS, thus, leads to a more detailed picture of the complete adsorption/desorption cycle.
Physica Status Solidi (a) | 2010
Johanna Wald; Christine Müller; M. Wahl; W. Hoth-Hannig; Matthias Hannig; M. Kopnarski; Christiane Ziegler
Analytical and Bioanalytical Chemistry | 2011
M. Wilhelmi; Christine Müller; Christiane Ziegler; Michael Kopnarski
Physica Status Solidi (a) | 2013
Fabian Kratz; Christine Müller; Nils Körber; Natalia Umanskaya; Matthias Hannig; Christiane Ziegler
Applied Surface Science | 2012
Maximilian Hemgesberg; Simon Schütz; Christine Müller; Matthias Schlörholz; Harald Latzel; Yu Sun; Christiane Ziegler; Werner R. Thiel
Physica Status Solidi (a) | 2013
J. Blass; Oliver Köhler; Mathias Fingerle; Christine Müller; Christiane Ziegler
Physica Status Solidi (a) | 2013
Christine Müller; Christiane Ziegler
Physica Status Solidi (a) | 2013
Christina Rösch; Christina Huber; Christine Müller; Natalia Umanskaya; Matthias Hannig; Christiane Ziegler
Analytical and Bioanalytical Chemistry | 2011
Christine Müller; Johanna Wald; Wiebke Hoth-Hannig; Natalia Umanskaya; Daniel Scholz; Matthias Hannig; Christiane Ziegler