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|a EBLCP
|b eng
|c EBLCP
|d YDX
|d OPELS
|d OCLCO
|d OCLCF
|d UKKRT
|d SFB
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|d OCLCQ
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|a 1395887192
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|a 9780323951357
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|z 9780323951340
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|z (OCoLC)1395887192
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|a R857.T55
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| 082 |
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|a 610.28
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| 049 |
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|a TXAM
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| 245 |
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|a Nanostructured materials for tissue engineering /
|c edited by Arijit Mondal, Amit Kumar Nayak and Prithviraj Chakraborty.
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| 260 |
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|a San Diego :
|b Elsevier,
|c 2023.
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| 300 |
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|a 1 online resource (629 p.).
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| 336 |
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|a text
|b txt
|2 rdacontent
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| 337 |
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|a computer
|b c
|2 rdamedia
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| 338 |
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|a online resource
|b cr
|2 rdacarrier
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| 490 |
1 |
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|a Nanotechnology in Biomedicine Series
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| 500 |
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|a Description based upon print version of record.
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| 505 |
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|a Front Cover -- Nanostructured Materials for Tissue Engineering -- Copyright Page -- Contents -- List of contributors -- 1 Properties and approaches -- 1 Nanomaterials regenerative medicine and tissue engineering -- 1.1 Introduction -- 1.2 Nanomaterial types, preparation, characterization, functionalization, and toxicology -- 1.2.1 Nanomaterial types -- 1.2.1.1 Polymeric nanoparticle -- 1.2.1.2 Metallic-based nanoparticle -- 1.2.1.3 Nanocomposite -- 1.2.2 Methods of nanomaterial preparation -- 1.2.2.1 Traditional synthesis methods -- 1.2.2.1.1 Thermal decomposing
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| 505 |
8 |
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|a 1.2.2.1.2 Evaporation of the solvent -- 1.2.2.1.3 Polyol -- 1.2.2.1.4 Liquid-liquid interface -- 1.2.2.1.5 Emulsion diffusion -- 1.2.2.2 Green synthesis methods -- 1.2.2.2.1 Bacteria-facilitated nanoparticle preparation -- 1.2.2.2.2 Fungi-facilitated nanoparticle preparation -- 1.2.2.2.3 Plant-facilitated nanoparticle preparation -- 1.2.3 Functionalization of nanomaterials -- 1.2.4 Characterization of nanomaterials -- 1.2.5 Toxicity of nanomaterials -- 1.3 Applications of nanomaterials in regenerative medicine -- 1.3.1 As scaffolds/nanocomposites -- 1.3.2 As delivery vehicles for biomolecules
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| 505 |
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|a 1.3.3 Cellular modification and labeling applications -- 1.3.4 Nanodevices, such as biosensors and other medical devices -- 1.4 Applications of nanomaterials in tissue engineering -- 1.4.1 Applications of nanomaterials in dental tissue engineering -- 1.5 Applications of nanomaterials in neural tissue engineering -- 1.6 Applications of nanomaterials in bone tissue engineering -- 1.7 Applications of nanomaterials in skin tissue engineering -- 1.8 Applications of nanomaterials in drug delivery -- 1.9 Future perspectives -- References -- 2 Advancement of nanoparticles in tissue engineering
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| 505 |
8 |
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|a 2.1 Introduction -- 2.2 A brief review of nanoparticles -- 2.3 Nanostructures utilization for tissue engineering scaffolds -- 2.4 Applications of nanoparticles in tissue engineering -- 2.4.1 Nanoparticles in biomolecular detection -- 2.4.1.1 Optical detection -- 2.4.1.2 Electrical detection -- 2.4.1.3 Electrochemical detection -- 2.4.2 Enhancement of biological property -- 2.4.3 Enhancement of mechanical property -- 2.4.4 Enhancement of electrical property -- 2.4.5 Antibacterial applications -- 2.4.6 Stimulation of cells for mechanotransduction -- 2.4.7 Gene delivery
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| 505 |
8 |
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|a 2.4.8 Magnetic cell patterning -- 2.4.9 Constructing 3D tissues -- 2.4.10 Dental tissue engineering -- 2.4.11 Bone tissue engineering -- 2.4.12 Neural tissue engineering -- 2.4.13 Skin tissue engineering -- 2.4.14 Cardiac tissue engineering -- 2.4.15 Applications of nanomaterials in drug delivery -- 2.4.16 Biomolecular manipulation -- 2.4.17 Bioink for 3D printing -- 2.5 Challenges and future perspectives -- 2.6 Conclusion -- References -- 3 Functionalization of nanoparticles in tissue engineering -- 3.1 Introduction -- 3.2 Importance of functionalization of nanoparticles (Aravind et al., 2012
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| 500 |
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|a Thiruppathi et al., 2017)
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| 520 |
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|a Nanostructured Materials for Tissue Engineering introduces the key properties and approaches involved in using nanostructured materials in tissue engineering, including functionalization, nanotechnology-based regenerative techniques, toxicological and biocompatible aspects. A broad range of nanomaterial types are covered, from polymer scaffolds and nanocomposites to gold nanoparticles and quantum dots. This book aids the reader in materials selection, as well as matching to the best applications, including bone, skin, pulmonary or neurological tissue engineering. Users will find this book to be an up-to-date review on this fast-changing field that is ideal for materials scientists, tissue engineers, biomedical engineers, and pharmaceutical scientists.
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| 650 |
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0 |
|a Tissue engineering.
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| 650 |
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0 |
|a Nanostructured materials
|x Therapeutic use.
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| 650 |
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2 |
|a Tissue Engineering
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| 650 |
|
6 |
|a Génie tissulaire.
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| 650 |
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6 |
|a Nanomatériaux
|x Emploi en thérapeutique.
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| 650 |
|
7 |
|a Tissue engineering
|2 fast
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| 650 |
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7 |
|a Enginyeria de teixits.
|2 thub
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| 650 |
|
7 |
|a Materials nanoestructurats.
|2 thub
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| 655 |
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7 |
|a Electronic books.
|2 local
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| 655 |
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7 |
|a Llibres electrònics.
|2 thub
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| 700 |
1 |
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|a Mondal, Arijit.
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| 700 |
1 |
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|a Nayak, Amit Kumar.
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| 700 |
1 |
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|a Chakraborty, Prithviraj.
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| 710 |
2 |
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|a ScienceDirect (Online service)
|
| 776 |
0 |
8 |
|i Print version:
|a Mondal, Arijit
|t Nanostructured Materials for Tissue Engineering
|d San Diego : Elsevier,c2023
|z 9780323951340
|
| 830 |
|
0 |
|a Nanotechnology in Biomedicine Series.
|
| 856 |
4 |
0 |
|u http://proxy.library.tamu.edu/login?url=https://www.sciencedirect.com/science/book/9780323951340
|z Connect to the full text of this electronic book
|t 0
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| 955 |
|
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|a Elsevier ScienceDirect 2026-2027
|
| 994 |
|
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|a 92
|b TXA
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|s af77a6f2-40df-40ac-b681-638f1ec3792c
|t 0
|
| 952 |
f |
f |
|a Texas A&M University
|b College Station
|c Electronic Resources
|s www_evans
|d Available Online
|t 0
|e R857.T55
|h Library of Congress classification
|
| 998 |
f |
f |
|a R857.T55
|t 0
|l Available Online
|