Nanotechnology Scaffolds for Alveolar Bone Regeneration

被引:74
作者
Funda, Goker [1 ]
Taschieri, Silvio [1 ,2 ]
Bruno, Gianni Aldo [1 ,3 ]
Grecchi, Emma [3 ]
Paolo, Savadori [2 ]
Girolamo, Donati [4 ]
Del Fabbro, Massimo [1 ,2 ]
机构
[1] Univ Milan, Dept Biomed Surg & Dent Sci, I-20122 Milan, Italy
[2] IRCCS Orthoped Inst Galeazzi, Via Riccardo Galeazzi 4, I-20161 Milan, MI, Italy
[3] Policlin Milano, IRCCS Ca Granda Osped Maggiore, Dent & Maxillo Facial Surg Unit, Via Francesco Sforza 35, I-20122 Milan, Italy
[4] ASST Fatebenefratelli Sacco Hosp, Dent Dept, Via Giovanni Battista Grassi 74, I-20157 Milan, Italy
关键词
scaffolds; nanomaterials; tissue engineering; regenerative medicine; alveolar bone regeneration; GRAPHENE-OXIDE; PERIODONTAL REGENERATION; BIOMEDICAL APPLICATIONS; INTRABONY DEFECTS; MAGNETIC-FIELD; SILK-FIBROIN; TISSUE; COMPOSITE; DIFFERENTIATION; DELIVERY;
D O I
10.3390/ma13010201
中图分类号
O64 [物理化学(理论化学)、化学物理学];
学科分类号
070304 ; 081704 ;
摘要
In oral biology, tissue engineering aims at regenerating functional tissues through a series of key events that occur during alveolar/periodontal tissue formation and growth, by means of scaffolds that deliver signaling molecules and cells. Due to their excellent physicochemical properties and biomimetic features, nanomaterials are attractive alternatives offering many advantages for stimulating cell growth and promoting tissue regeneration through tissue engineering. The main aim of this article was to review the currently available literature to provide an overview of the different nano-scale scaffolds as key factors of tissue engineering for alveolar bone regeneration procedures. In this narrative review, PubMed, Medline, Scopus and Cochrane electronic databases were searched using key words like "tissue engineering", "regenerative medicine", "alveolar bone defects", "alveolar bone regeneration", "nanomaterials", "scaffolds", "nanospheres" and "nanofibrous scaffolds". No limitation regarding language, publication date and study design was set. Hand-searching of the reference list of identified articles was also undertaken. The aim of this article was to give a brief introduction to review the role of different nanoscaffolds for bone regeneration and the main focus was set to underline their role for alveolar bone regeneration procedures.
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页数:20
相关论文
共 117 条
[71]   Tissue engineering bone-ligament complexes using fiber-guiding scaffolds [J].
Park, Chan Ho ;
Rios, Hector F. ;
Jin, Qiming ;
Sugai, James V. ;
Padial-Molina, Miguel ;
Taut, Andrei D. ;
Flanagan, Colleen L. ;
Hollister, Scott J. ;
Giannobile, William V. .
BIOMATERIALS, 2012, 33 (01) :137-145
[72]   Biomimetic hybrid scaffolds for engineering human tooth-ligament interfaces [J].
Park, Chan Ho ;
Rios, Hector F. ;
Jin, Qiming ;
Bland, Megan E. ;
Flanagan, Colleen L. ;
Hollister, Scott J. ;
Giannobile, William V. .
BIOMATERIALS, 2010, 31 (23) :5945-5952
[73]   Tissue engineering for bone regeneration and osseointegration in the oral cavity [J].
Pilipchuk, Sophia P. ;
Plonka, Alexandra B. ;
Monje, Alberto ;
Taut, Andrei D. ;
Lanis, Alejandro ;
Kang, Benjamin ;
Giannobile, William V. .
DENTAL MATERIALS, 2015, 31 (04) :317-338
[74]   Natural-Based Nanocomposites for Bone Tissue Engineering and Regenerative Medicine: A Review [J].
Pina, Sandra ;
Oliveira, Joaquim M. ;
Reis, Rui L. .
ADVANCED MATERIALS, 2015, 27 (07) :1143-1169
[75]   Triple PLGA/PCL Scaffold Modification Including Silver Impregnation, Collagen Coating, and Electrospinning Significantly Improve Biocompatibility, Antimicrobial, and Osteogenic Properties for Orofacial Tissue Regeneration [J].
Qian, Yunzhu ;
Zhou, Xuefeng ;
Zhang, Feimin ;
Diekwisch, Thomas G. H. ;
Luan, Xianghong ;
Yang, Jianxin .
ACS APPLIED MATERIALS & INTERFACES, 2019, 11 (41) :37381-37396
[76]   Graphene oxide enrichment of collagen membranes improves DPSCs differentiation and controls inflammation occurrence [J].
Radunovic, Milena ;
De Colli, Marianna ;
De Marco, Patrizia ;
Di Nisio, Chiara ;
Fontana, Antonella ;
Piattelli, Adriano ;
Cataldi, Amelia ;
Zara, Susi .
JOURNAL OF BIOMEDICAL MATERIALS RESEARCH PART A, 2017, 105 (08) :2312-2320
[77]  
Raghavendra SS, 2017, J ISTANB UNIV FAC DE, V51, pS128, DOI 10.17096/jiufd.63659
[78]   3D-printed Bioresorbable Scaffold for Periodontal Repair [J].
Rasperini, G. ;
Pilipchuk, S. P. ;
Flanagan, C. L. ;
Park, C. H. ;
Pagni, G. ;
Hollister, S. J. ;
Giannobile, W. V. .
JOURNAL OF DENTAL RESEARCH, 2015, 94 (09) :153S-157S
[79]   Periodontal regeneration using a bilayered PLGA/calcium phosphate construct [J].
Reis, Emily C. Carlo ;
Borges, Andrea P. B. ;
Araujo, Michel V. F. ;
Mendes, Vanessa C. ;
Guan, Limin ;
Davies, John E. .
BIOMATERIALS, 2011, 32 (35) :9244-9253
[80]   Growth and accelerated differentiation of mesenchymal stem cells on graphene-oxide-coated titanate with dexamethasone on surface of titanium implants [J].
Ren, Na ;
Li, Jianhua ;
Qiu, Jichuan ;
Yan, Mei ;
Liu, Haiyun ;
Ji, Dandan ;
Huang, Jiadong ;
Yu, Jinghua ;
Liu, Hong .
DENTAL MATERIALS, 2017, 33 (05) :525-535