Biomaterials for In Situ Tissue Regeneration: A Review

被引:168
作者
Abdulghani, Saba [1 ]
Mitchell, Geoffrey R. [1 ]
机构
[1] Polytech Leiria, Ctr Rapid & Sustainable Prod Dev, P-2430080 Marinha Grande, Portugal
关键词
in situ tissue engineering; biomaterials; natural polymers; synthetic polymers; DECELLULARIZED EXTRACELLULAR-MATRIX; CALCIUM-PHOSPHATE CERAMICS; COLLAGEN SPONGE SCAFFOLD; BONE REGENERATION; GROWTH-FACTOR; MECHANICAL-PROPERTIES; CONTROLLED-RELEASE; COMPOSITE SCAFFOLDS; VIVO EVALUATION; CARTILAGE;
D O I
10.3390/biom9110750
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
This review focuses on a somewhat unexplored strand of regenerative medicine, that is in situ tissue engineering. In this approach manufactured scaffolds are implanted in the injured region for regeneration within the patient. The scaffold is designed to attract cells to the required volume of regeneration to subsequently proliferate, differentiate, and as a consequence develop tissue within the scaffold which in time will degrade leaving just the regenerated tissue. This review highlights the wealth of information available from studies of ex-situ tissue engineering about the selection of materials for scaffolds. It is clear that there are great opportunities for the use of additive manufacturing to prepare complex personalized scaffolds and we speculate that by building on this knowledge and technology, the development of in situ tissue engineering could rapidly increase. Ex-situ tissue engineering is handicapped by the need to develop the tissue in a bioreactor where the conditions, however optimized, may not be optimum for accelerated growth and maintenance of the cell function. We identify that in both methodologies the prospect of tissue regeneration has created much promise but delivered little outside the scope of laboratory-based experiments. We propose that the design of the scaffolds and the materials selected remain at the heart of developments in this field and there is a clear need for predictive modelling which can be used in the design and optimization of materials and scaffolds.
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页数:24
相关论文
共 161 条
[1]   Regeneration of intervertebral disc tissue by resorbable cell-free polyglycolic acid-based implants in a rabbit model of disc degeneration [J].
Abbushi, Alexander ;
Endres, Michaela ;
Cabraja, Mario ;
Kroppenstedt, Stefan Nicolas ;
Thomale, Ulrich Wilhelm ;
Sittinger, Michael ;
Hegewald, Aldemar Andres ;
Morawietz, Lars ;
Lemke, Arne-Joern ;
Bansemer, Victor-Goetz ;
Kaps, Christian ;
Woiciechowsky, Christian .
SPINE, 2008, 33 (14) :1527-1532
[2]   Biofabrication for osteochondral tissue regeneration: bioink printability requirements [J].
Abdulghani, Saba ;
Morouco, Pedro G. .
JOURNAL OF MATERIALS SCIENCE-MATERIALS IN MEDICINE, 2019, 30 (02)
[3]   Biomaterial strategies for engineering implants for enhanced osseointegration and bone repair [J].
Agarwal, Rachit ;
Garcia, Andres J. .
ADVANCED DRUG DELIVERY REVIEWS, 2015, 94 :53-62
[4]   Controlling stem cell behavior with decellularized extracellular matrix scaffolds [J].
Agmon, Gillie ;
Christman, Karen L. .
CURRENT OPINION IN SOLID STATE & MATERIALS SCIENCE, 2016, 20 (04) :193-201
[5]  
Amini Ami R., 2012, Critical Reviews in Biomedical Engineering, V40, P363
[6]   Pore orientation mediated control of mechanical behavior of scaffolds and its application in cartilage-mimetic scaffold design [J].
Arora, Aditya ;
Kothari, Anjaney ;
Katti, Dhirendra S. .
JOURNAL OF THE MECHANICAL BEHAVIOR OF BIOMEDICAL MATERIALS, 2015, 51 :169-183
[8]   Nanoceria Can Act as the Cues for Angiogenesis in Tissue Engineering Scaffolds: Toward Next-Generation in Situ Tissue Engineering [J].
Augustine, Robin ;
Dalvi, Yogesh B. ;
Dan, Pan ;
George, Nebu ;
Helle, Debora ;
Varghese, Ruby ;
Thomas, Sabu ;
Menu, Patrick ;
Sandhyarani, Neelakandapillai .
ACS BIOMATERIALS SCIENCE & ENGINEERING, 2018, 4 (12) :4338-4353
[9]  
Badylak S.F., 2015, Acta Biomater, V23, P17, DOI DOI 10.1016/J.ACTBIO.2015.07.016
[10]   Bioactive hydrogels for bone regeneration [J].
Bai, Xin ;
Gao, Mingzhu ;
Syed, Sahla ;
Zhuang, Jerry ;
Xu, Xiaoyang ;
Zhang, Xue-Qing .
BIOACTIVE MATERIALS, 2018, 3 (04) :401-417