Advances in Biomembranes and Lipid Self-Assembly | Buch | 978-0-443-42823-4 | www.sack.de

Buch, Englisch, Format (B × H): 152 mm x 229 mm, Gewicht: 450 g

Advances in Biomembranes and Lipid Self-Assembly


Erscheinungsjahr 2025
ISBN: 978-0-443-42823-4
Verlag: Elsevier Science & Technology

Buch, Englisch, Format (B × H): 152 mm x 229 mm, Gewicht: 450 g

ISBN: 978-0-443-42823-4
Verlag: Elsevier Science & Technology


Advances in Biomembranes and Lipid Self-Assembly, Volume 42 highlights new advances in the field, with this new volume presenting interesting chapters written by an international board of authors.

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Weitere Infos & Material


1. Asymmetric Artificial Lipid Membranes
2. Application of a Supported Lipid Bilayer for the Leaflet-resolved Analysis
3. Preparation Methods and Applications of Biomimetic Membranes
4. Recent Advances in Computational Modeling of the Effects of Micro/Nanoparticle Interactions on Vesicle Morphology
5. Fusogenic Liposomes to Overcome the Gram-Negative Bacterial Outer Membrane Barrier
6. Vesicles
7. Investigation of Biophysical and Nano-Mechanical Properties of Asymmetric Artificial Lipid Membranes
8. Differential Scanning Calorimetry in the Study of Membranotropic Activity and Lipid Biomembrane Affinity
9. Lipid Giant Vesicles and Membrane Simulation as a Window into Lipid Membrane Parameters and Homeostatic Failure


Rappolt, Michael
Michael Rappolt has been appointed as Professor of Lipid Biophysics (School of Food Science and Nutrition) in April 2013. He received his MSc and PhD in physics from the University of Hamburg and achieved his habilitation at the University of Ljubljana in the Faculty of Health Sciences. He was Senior Researcher at the Synchrotron Trieste Outstation (Italy), Institute of Biophysics and Nanosystems Research (Austrian Academy of Sciences), before becoming Assistant Professor at Graz University of Technology. Professor Michael Rappolt is a leading authority on investigating the structure and dynamics of lipid membranes using small-angle X-ray scattering. His recent research activities have concentrated on the study of drug/membrane interactions with potential applications to drug delivery and food. Further research topics concentrate on characterising crystallization processes in food, the investigation of colloid interfaces and the determination of particle structures on the nanoscale. He also seeks to transfer standard measurement techniques applied in food research – such as mechanic (sound and shear) and thermodynamic sample manipulations to synchrotron sites – to understand food on a smaller (nanometre) and faster (microsecond) scale.



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