Buch, Englisch, 748 Seiten, Previously published in hardcover, Format (B × H): 155 mm x 235 mm, Gewicht: 1147 g
Concepts, Molecular Mechanisms, and Biomedical Applications
Buch, Englisch, 748 Seiten, Previously published in hardcover, Format (B × H): 155 mm x 235 mm, Gewicht: 1147 g
ISBN: 978-1-4939-3937-4
Verlag: Springer
The book presents the first comprehensive molecular theory of the living cell ever published since the cell doctrine was formulated in 1838-1839. It introduces into cell biology over thirty key concepts, principles and laws imported from physics, chemistry, computer science, linguistics, semiotics and philosophy. The author formulates physically, chemically and enzymologically realistic molecular mechanisms to account for basic living processes such as ligand-receptor interactions, enzymic catalysis, force-generating mechanisms in molecular motors, chromatin remodelling, and signal transduction. Possible solutions to basic and practical problems facing contemporary biology and biomedical sciences have been suggested, including pharmacotherapeutics and personalized medicine.
Zielgruppe
Research
Autoren/Hrsg.
Fachgebiete
- Naturwissenschaften Biowissenschaften Molekularbiologie
- Naturwissenschaften Chemie Organische Chemie
- Naturwissenschaften Biowissenschaften Enzymologie
- Naturwissenschaften Biowissenschaften Proteinforschung
- Naturwissenschaften Biowissenschaften Zellbiologie
- Naturwissenschaften Physik Angewandte Physik Biophysik
- Naturwissenschaften Biowissenschaften Angewandte Biologie Biophysik
Weitere Infos & Material
Part I Principles, Laws, and Concepts.- Physics.- Chemistry.- Biology.- Engineering.- Linguistics, Semiotics, and Philosophy.- Part II Theories, Molecular Mechanisms, and Models.- Molecular Mechanisms of Enzymic Catalysis.- The Conformon.- Intracellular Dissipative Structures (IDSs).- The Living Cell.- Part III Applications: From Molecules to Mind and Evolution.- Subcellular Systems.- Whole Cells.- Mechanisms of the Origin of Life.- Principles and Mechanisms of Biological Evolution.- Multicellular Systems.- What Is Life?- Why Is the Cell So Complex?- Ribonoscopy and Personalized Medicine.- Ribonoscopy and ‘Theragnostics’.- Application of the Knowledge Uncertainty Principle to Biomedical Sciences.- Conclusions.