Buch, Englisch, 135 Seiten, Previously published in hardcover, Format (B × H): 155 mm x 235 mm, Gewicht: 242 g
Reihe: Springer Theses
Buch, Englisch, 135 Seiten, Previously published in hardcover, Format (B × H): 155 mm x 235 mm, Gewicht: 242 g
Reihe: Springer Theses
ISBN: 978-981-13-4954-6
Verlag: Springer Nature Singapore
This book presents methodological and application research in detecting cellular and molecular biophysical properties based on atomic force microscopy (AFM) nanorobotics. Series methods for in situ label-free visualizing and quantifying the multiple physical properties of single cells and single molecules were developed, including immobilization strategies for observing fine structures of living cells, measurements of single-cell mechanics, force recognition of molecular interactions, and mapping protein organizations on cell surface. The biomedical applications of these methods in clinical lymphoma treatments were explored in detail, including primary sample preparation, cancer cell recognition, AFM detection and data analysis. Future directions about the biomedical applications of AFM are also given.
Zielgruppe
Research
Autoren/Hrsg.
Fachgebiete
- Naturwissenschaften Physik Elektromagnetismus Mikroskopie, Spektroskopie
- Naturwissenschaften Biowissenschaften Angewandte Biologie Biophysik
- Naturwissenschaften Physik Angewandte Physik Biophysik
- Naturwissenschaften Chemie Analytische Chemie Magnetresonanz
- Naturwissenschaften Physik Thermodynamik Festkörperphysik, Kondensierte Materie
- Naturwissenschaften Biowissenschaften Biowissenschaften Biologische Mikroskopie
- Medizin | Veterinärmedizin Medizin | Public Health | Pharmazie | Zahnmedizin Klinische und Innere Medizin Immunologie
- Technische Wissenschaften Technik Allgemein Nanotechnologie
- Technische Wissenschaften Technik Allgemein Mess- und Automatisierungstechnik
Weitere Infos & Material
Introduction.- Immobilization methods for observing living cells.- Label-free measuring the mechanics of single cells.- Single-molecule recognition and force measurements.- Mapping membrane proteins on cell surface.- Applications of single-cell and single-molecule physiological properties characterization methods in clinical lymphoma treatment.- Conclusion.