Fabrication Strategies of Scaffolds for Delivering Active Ingredients for Tissue Engineering

被引:35
作者
Elkasabgy, Nermeen A. [1 ]
Mahmoud, Azza A. [2 ,3 ]
机构
[1] Cairo Univ, Fac Pharm, Dept Pharmaceut & Ind Pharm, Cairo, Egypt
[2] Future Univ Egypt, Fac Pharmaceut Sci & Pharmaceut Ind, Dept Pharmaceut & Pharmaceut Technol, Cairo, Egypt
[3] Natl Res Ctr, Pharmaceut & Drug Ind Res Div, Dept Pharmaceut Technol, Cairo, Egypt
关键词
tissue engineering; scaffolds; 3D scaffolds; 4D scaffolds; drug delivery; DRUG-DELIVERY; NANOFIBROUS SCAFFOLDS; SHAPE-MEMORY; MECHANICAL-PROPERTIES; IN-VITRO; CONTROLLED-RELEASE; COMPOSITE SCAFFOLDS; POLYMERIC SCAFFOLDS; BONE; HYDROGELS;
D O I
10.1208/s12249-019-1470-4
中图分类号
R9 [药学];
学科分类号
1007 ;
摘要
Designing scaffolds with optimum properties is an essential factor for tissue engineering success. They can be seeded with isolated cells or loaded with drugs to stimulate the body ability to repair or regenerate the injured tissues by acting as centers for new tissue formation. Recently, scaffolds gained a significant interest as principal candidates for tissue engineering due to overcoming the autograft or allograft's associated problems. The advancement of the tissue engineering field relies mainly on the introduction of new biomaterials for scaffolds' fabrication. This review presents and criticizes different scaffolds' fabrication techniques with particular emphasis on the fibrous, injectable in situ forming, foam, 3D freeze-dried, 3D printed, and 4D scaffolds. This article highlights on scaffolds' composition which would be beneficial for developing scaffolds that could potentially help to meet the demand for both drug delivery and tissue regeneration.
引用
收藏
页数:18
相关论文
共 191 条
[1]   Use of electrospinning technique for biomedical applications [J].
Agarwal, Seema ;
Wendorff, Joachim H. ;
Greiner, Andreas .
POLYMER, 2008, 49 (26) :5603-5621
[2]   Gelatin/Carboxymethyl chitosan based scaffolds for dermal tissue engineering applications [J].
Agarwal, Tarun ;
Narayan, Rajan ;
Maji, Somnath ;
Behera, Shubhanath ;
Kulanthaivel, Senthilguru ;
Maiti, Tapas Kumar ;
Banerjee, Indranil ;
Pal, Kunal ;
Giri, Supratim .
INTERNATIONAL JOURNAL OF BIOLOGICAL MACROMOLECULES, 2016, 93 :1499-1506
[3]   Nanoporous 3D-Printed Scaffolds for Local Doxorubicin Delivery in Bone Metastases Secondary to Prostate Cancer [J].
Ahangar, Pouyan ;
Akoury, Elie ;
Luna, Ana Sofia Ramirez Garcia ;
Nour, Antone ;
Weber, Michael H. ;
Rosenzweig, Derek H. .
MATERIALS, 2018, 11 (09)
[4]   Electrospun gelatin nanofibrous scaffolds for cartilage tissue engineering [J].
Aliakbarshirazi, Sheida ;
Talebian, Aazam .
MATERIALS TODAY-PROCEEDINGS, 2017, 4 (07) :7059-7064
[5]   Biocompatibility of Nanofibrous Scaffolds with Different Concentrations of PLA/Hydroxyapatite [J].
Altamirano Valencia, Alfonso Ali ;
Vargas Becerril, Nancy ;
Vazquez Vazquez, Febe Carolina ;
Vargas Koudriavtsev, Tatiana ;
Montesinos Montesinos, Juan Jose ;
Alfaro Mayorga, Erika ;
Alvarez Perez, Marco Antonio .
ODOVTOS INTERNATIONAL JOURNAL OF DENTAL SCIENCES, 2016, 18 (03) :39-50
[6]  
[Anonymous], 2016, MED LETT DRUGS THER, V58, P78
[7]   The effect of hydroxyapatite in biopolymer-based scaffolds on release of naproxen sodium [J].
Asadian-Ardakani, Vahid ;
Saber-Samandari, Samaneh ;
Saber-Samandari, Saeed .
JOURNAL OF BIOMEDICAL MATERIALS RESEARCH PART A, 2016, 104 (12) :2992-3003
[8]  
Ashida Kaneyoshi., 2007, Polyurethane and Related Foams: Chemistry and Technology
[10]   Efficacy of rhBMP-2 Loaded PCL/β-TCP/bdECM Scaffold Fabricated by 3D Printing Technology on Bone Regeneration [J].
Bae, Eun-Bin ;
Park, Keun-Ho ;
Shim, Jin-Hyung ;
Chung, Ho-Yun ;
Choi, Jae-Won ;
Lee, Jin-Ju ;
Kim, Chang-Hwan ;
Jeon, Ho-Jun ;
Kang, Seong-Soo ;
Huh, Jung-Bo .
BIOMED RESEARCH INTERNATIONAL, 2018, 2018