Towards 4D Bioprinting
Autor Adrian Neaguen Limba Engleză Paperback – 21 noi 2022
In addition, the book provides the latest information on the principles and applications of 4D bioprinting, such as for medical devices and assistive technology. The last chapter discusses the perspectives of the field. This book provides an up-to date description of the theoretical tools developed for the optimization of 3D bioprinting, presents the morphogenetic mechanisms responsible for the post-printing evolution of the bioprinted construct and describing computational methods for simulating this evolution, and discusses the leap from 3D to 4D bioprinting in the light of the latest developments in the field. Most importantly, Towards 4D Printing explains the importance of theoretical modeling for the progress of 3D and 4D bioprinting.
- Presents theoretical tools needed for the optimization of the bioprinting process
- Describes the principles and implementation of computer simulations needed to predict the outcome of 3D bioprinting
- Analyzes the distinctive features of 4D bioprinting along with its applications and perspectives
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Specificații
ISBN-13: 9780128186534
ISBN-10: 0128186534
Pagini: 300
Dimensiuni: 191 x 235 mm
Greutate: 0.52 kg
Editura: ELSEVIER SCIENCE
ISBN-10: 0128186534
Pagini: 300
Dimensiuni: 191 x 235 mm
Greutate: 0.52 kg
Editura: ELSEVIER SCIENCE
Cuprins
1. Introduction
2. 4D Printing: Definition, Smart Materials, and Applications
3. 3D and 4D Printing of Medical Devices
4. 3D and 4D Printing of Assistive Technology
5. 3D Bioprinting Techniques
6. Theoretical Methods for the Optimization of 3D Bioprinting: Printability, Formability, and Cell Survival
7. Multicellular Self-Assembly
8. Post-Printing Evolution of 3D Bioprinted Tissue Constructs
9. The Definition of 4D Bioprinting
10. Applications of 4D Bioprinting
11. Perspectives of 3D and 4D Bioprinting
2. 4D Printing: Definition, Smart Materials, and Applications
3. 3D and 4D Printing of Medical Devices
4. 3D and 4D Printing of Assistive Technology
5. 3D Bioprinting Techniques
6. Theoretical Methods for the Optimization of 3D Bioprinting: Printability, Formability, and Cell Survival
7. Multicellular Self-Assembly
8. Post-Printing Evolution of 3D Bioprinted Tissue Constructs
9. The Definition of 4D Bioprinting
10. Applications of 4D Bioprinting
11. Perspectives of 3D and 4D Bioprinting
Notă biografică
Dr. Adrian Neagu received his M.S. in Physics from the West University of Timisoara, Romania (1991). He worked at Freie Universität Berlin as a research fellow of the German Academic Exchange Service (Deutscher Akademischer Austauschdienst, DAAD) (1992-1993). In 2002, he obtained his PhD in Statistical Physics from the Babes-Bolyai University of Cluj-Napoca, Romania. As a postdoctoral fellow in the research group led by Prof. Gabor Forgacs at the University of Missouri, Columbia, MO, USA, he studied the self-assembly of multicellular systems (2002-2003). He applied methods of statistical physics to develop computer simulations aimed at predicting the outcome of three-dimensional (3D) bioprinting of living tissue constructs [1-3]. He teaches Biophysics at the Victor Babes University of Medicine and Pharmacy Timisoara, as Associate Professor (2004-2006), and Professor (2006-present). In 2008, he was assigned Adjunct Professor at the University of Missouri, Columbia, USA. Here, as a visiting scholar, he worked on computational aspects of 3D tissue bioprinting as co-principal investigator of a National Science Foundation grant, FIBR-0526854 entitled "Understanding and employing multicellular self-assembly" (2006-2010). Dr. Neagu is coauthor of a patent on 3D tissue printing (United States Patent No. 8241905/14.08.2012), and editor of the Journal of 3D Printing in Medicine.