Chitosan-based scaffolds as drug delivery systems in bone tissue engineering

被引:72
作者
Bharathi, R. [1 ]
Ganesh, S. Shree [1 ]
Harini, G. [1 ]
Vatsala, Kumari [1 ]
Anushikaa, R. [1 ]
Aravind, S. [1 ]
Abinaya, S. [1 ]
Selvamurugan, N. [1 ]
机构
[1] SRM Inst Sci & Technol, Coll Engn & Technol, Sch Bioengn, Dept Biotechnol, Kattankulathur 603203, Tamil Nadu, India
关键词
Bone tissue engineering; Chitosan; Drug delivery; Osteomimetic; Scaffolds; MESOPOROUS SILICA NANOPARTICLES; OF-THE-ART; IN-VITRO; MOLECULAR-WEIGHT; CONTROLLED-RELEASE; LOCAL-DELIVERY; GENE DELIVERY; STEM-CELLS; HYDROGELS; DEXAMETHASONE;
D O I
10.1016/j.ijbiomac.2022.09.058
中图分类号
Q5 [生物化学]; Q7 [分子生物学];
学科分类号
071010 ; 081704 ;
摘要
The bone tissue engineering approach for treating large bone defects becomes necessary when the tissue damage surpasses the threshold of the inherent regenerative ability of the human body. A myriad of natural biode-gradable polymers and scaffold fabrication techniques have emerged in the last decade. Chitosan (CS) is espe-cially attractive as a bone scaffold material to support cell attachment and proliferation and mineralization of the bone matrix. The primary amino groups in CS are responsible for properties such as controlled drug release, mucoadhesion, in situ gelation, and transfection. CS-based smart drug delivery scaffolds that respond to envi-ronmental stimuli have been reported to have a localized sustained delivery of drugs in the large bone defect area. This review outlines the recent advances in the fabrication of CS-based scaffolds as a pharmaceutical carrier to deliver drugs such as antibiotics, growth factors, nucleic acids, and phenolic compounds for bone tissue regeneration.
引用
收藏
页码:132 / 153
页数:22
相关论文
共 229 条
[1]   Bioactivity and Drug Release Study of Dexamethasone Loaded Bioglass/Chitosan Composites for Biomedical Applications [J].
Abd Raboh, Ahmed Saber ;
El-khooly, Mohammed Salah ;
Hassaan, Mohammed Yousry .
JOURNAL OF INORGANIC AND ORGANOMETALLIC POLYMERS AND MATERIALS, 2021, 31 (07) :2779-2790
[2]   Chitosan in Surface Modification for Bone Tissue Engineering Applications [J].
Abinaya, Balakrishnan ;
Prasith, Tandiakkal Prakash ;
Ashwin, Badrinath ;
Chandran, Syamala Viji ;
Selvamurugan, Nagarajan .
BIOTECHNOLOGY JOURNAL, 2019, 14 (12)
[3]  
AccessGUDID, US
[4]   Anticancer Activity of Chitosan, Chitosan Derivatives, and Their Mechanism of Action [J].
Adhikari, Hari Sharan ;
Yadav, Paras Nath .
INTERNATIONAL JOURNAL OF BIOMATERIALS, 2018, 2018
[5]   Fabrication of 3D hybrid scaffold by combination technique of electrospinning-like and freeze-drying to create mechanotransduction signals and mimic extracellular matrix function of skin [J].
Aghmiuni, A. Izadyari ;
Keshel, S. Heidari ;
Sefat, Farshid ;
AkbarzadehKhiyavi, Azim .
MATERIALS SCIENCE & ENGINEERING C-MATERIALS FOR BIOLOGICAL APPLICATIONS, 2021, 120
[6]   The Potential Applications of Hyaluronic Acid Hydrogels in Biomedicine [J].
Ahmadian, Elham ;
Dizaj, Solmaz Maleki ;
Eftekhari, Aziz ;
Dalir, Elaheh ;
Vahedi, Parviz ;
Hasanzadeh, Amir ;
Samiei, Mohammad .
DRUG RESEARCH, 2020, 70 (01) :6-11
[7]   Comparison the effects of chitosan and hyaluronic acid-based thermally sensitive hydrogels containing rosuvastatin on human osteoblast-like MG-63 cells [J].
Akbari, Vajihe ;
Rezazadeh, Mahboubeh ;
Ebrahimi, Zahra .
RESEARCH IN PHARMACEUTICAL SCIENCES, 2020, 15 (01) :97-106
[8]   siRNA Delivery with Chitosan: Influence of Chitosan Molecular Weight, Degree of Deacetylation, and Amine to Phosphate Ratio on in Vitro Silencing Efficiency, Hemocompatibility, Biodistribution, and in Vivo Efficacy [J].
Alameh, Mohamad ;
Lavertu, Marc ;
Tran-Khanh, Nicolas ;
Chang, Chi-Yuan ;
Lesage, Frederic ;
Bail, Martine ;
Darras, Vincent ;
Chevrier, Anik ;
Buschmann, Michael D. .
BIOMACROMOLECULES, 2018, 19 (01) :112-131
[9]  
Alberts B., 2008, Molecular Biology of The Cell
[10]  
Garland Science