Nanobioceramics for Bone Tissue Engineering and Regenerative Biomedicine - Gholami, Reza; Naghib, Seyed Morteza; - Prospero Internet Bookshop

Nanobioceramics for Bone Tissue Engineering and Regenerative Biomedicine: Tunable Biological Characteristics
 
Product details:

ISBN13:9789819600403
ISBN10:9819600405
Binding:Hardback
No. of pages:475 pages
Size:235x155 mm
Language:English
Illustrations: 5 Illustrations, black & white; 30 Illustrations, color
700
Category:

Nanobioceramics for Bone Tissue Engineering and Regenerative Biomedicine

Tunable Biological Characteristics
 
Edition number: 2025
Publisher: Springer
Date of Publication:
Number of Volumes: 1 pieces, Book
 
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EUR 160.49
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Short description:

This book presents the tunable biological characteristics of nanobioceramics and focuses on some challenges in bone tissue engineering and regenerative medicine. Synthetic composite-based materials and scaffolds should be biodegradable, biocompatible and supply sufficient structural aid for cell migration, along with oxygen, waste, and nutrient carriage to accelerate bone regeneration process and remodeling in defects. These properties may be reached by functioning tunable physical features, including absorption rate, degradation rate, modulus, porosity, and swelling by adjustments with the addition of ceramic phases and copolymers as synthetic composite scaffolds. Synthetic bioceramics seek to imitate the natural hydroxyapatite (HA) crystal creation located in bone. These ceramics, particularly calcium phosphates, have exhibited great osteoinductivity, osteoconductivity, and biocompatibility. Lately, silicon-based glass-ceramics have been investigated as a substitution of calcium phosphates. Several members of this collection exhibit high bioactivity, have attractive mechanical strength, and are known to increase cell proliferation, adhesion, and mineralization of extracellular matrix. Moreover, antibacterial properties of some nanostructured bioceramics established significant interests in avoiding implants rejection in surgery and biomedicine.

Long description:

This book presents the tunable biological characteristics of nanobioceramics and focuses on some challenges in bone tissue engineering and regenerative medicine. Synthetic composite-based materials and scaffolds should be biodegradable, biocompatible and supply sufficient structural aid for cell migration, along with oxygen, waste, and nutrient carriage to accelerate bone regeneration process and remodeling in defects. These properties may be reached by functioning tunable physical features, including absorption rate, degradation rate, modulus, porosity, and swelling by adjustments with the addition of ceramic phases and copolymers as synthetic composite scaffolds. Synthetic bioceramics seek to imitate the natural hydroxyapatite (HA) crystal creation located in bone. These ceramics, particularly calcium phosphates, have exhibited great osteoinductivity, osteoconductivity, and biocompatibility. Lately, silicon-based glass-ceramics have been investigated as a substitution of calcium phosphates. Several members of this collection exhibit high bioactivity, have attractive mechanical strength, and are known to increase cell proliferation, adhesion, and mineralization of extracellular matrix. Moreover, antibacterial properties of some nanostructured bioceramics established significant interests in avoiding implants rejection in surgery and biomedicine.

Table of Contents:

Introduction.- Bone.- Bone Cells.-  Bone Extracellular Matrix.- Bone ECM Proteins Part I.- Bone ECM Proteins Part II.- Bioactivity and Osteogenic Features.- Nano-Bioceramics.- Composites for BTE.