Literature DB >> 29736582

Tissue Engineering Strategies for Osteochondral Repair.

F Raquel Maia1,2, Mariana R Carvalho3,4, J Miguel Oliveira5,6,7, Rui L Reis5,6,7.   

Abstract

Tissue engineering strategies have been pushing forward several fields in the range of biomedical research. The musculoskeletal field is not an exception. In fact, tissue engineering has been a great asset in the development of new treatments for osteochondral lesions. Herein, we overview the recent developments in osteochondral tissue engineering. Currently, the treatments applied in a clinical scenario have shown some drawbacks given the difficulty in regenerating a fully functional hyaline cartilage. Among the different strategies designed for osteochondral regeneration, it is possible to identify cell-free strategies, scaffold-free strategies, and advanced strategies, where different materials are combined with cells. Cell-free strategies consist in the development of scaffolds in the attempt to better fulfill the requirements of the cartilage regeneration process. For that, different structures have been designed, from monolayers to multilayered structures, with the intent to mimic the osteochondral architecture. In the case of scaffold-free strategies, they took advantage on the extracellular matrix produced by cells. The last strategy relies in the development of new biomaterials capable of mimicking the extracellular matrix. This way, the cell growth, proliferation, and differentiation at the lesion site are expedited, exploiting the self-regenerative potential of cells and its interaction with biomolecules. Overall, despite the difficulties associated with each approach, tissue engineering has been proven a valuable tool in the regeneration of osteochondral lesions and together with the latest advances in the field, promises to revolutionize personalized therapies.

Entities:  

Keywords:  Biomaterials; Cell-free strategies; Extracellular matrix mimicry; Osteochondral regeneration; Scaffold-free strategies

Mesh:

Substances:

Year:  2018        PMID: 29736582     DOI: 10.1007/978-3-319-76735-2_16

Source DB:  PubMed          Journal:  Adv Exp Med Biol        ISSN: 0065-2598            Impact factor:   2.622


  9 in total

1.  [Construction and preliminary study on biological characteristics of composite cell sheets of mesenchymal stem cells and endothelial progenitor cells derived from peripheral blood].

Authors:  Fei Xing; Xin Duan; Ming Liu; Jialei Chen; Cheng Long; Ran Chen; Jiachen Sun; Shuang Wu; Li Chen; Zhou Xiang
Journal:  Zhongguo Xiu Fu Chong Jian Wai Ke Za Zhi       Date:  2020-01-15

2.  Radial extracorporeal shock wave therapy promotes osteochondral regeneration of knee joints in rabbits.

Authors:  Hui Qi; Shaofeng Jin; Chunyang Yin; Lei Chen; Lei Sun; Yajun Liu
Journal:  Exp Ther Med       Date:  2018-08-20       Impact factor: 2.447

3.  Osteochondral repair using scaffolds with gradient pore sizes constructed with silk fibroin, chitosan, and nano-hydroxyapatite.

Authors:  Hongli Xiao; Wenliang Huang; Kun Xiong; Shiqiang Ruan; Cheng Yuan; Gang Mo; Renyuan Tian; Sirui Zhou; Rongfeng She; Peng Ye; Bin Liu; Jiang Deng
Journal:  Int J Nanomedicine       Date:  2019-03-22

Review 4.  Current Trends in the Evaluation of Osteochondral Lesion Treatments: Histology, Histomorphometry, and Biomechanics in Preclinical Models.

Authors:  M Maglio; S Brogini; S Pagani; G Giavaresi; M Tschon
Journal:  Biomed Res Int       Date:  2019-10-09       Impact factor: 3.411

Review 5.  Applications of Biocompatible Scaffold Materials in Stem Cell-Based Cartilage Tissue Engineering.

Authors:  Xia Zhao; Daniel A Hu; Di Wu; Fang He; Hao Wang; Linjuan Huang; Deyao Shi; Qing Liu; Na Ni; Mikhail Pakvasa; Yongtao Zhang; Kai Fu; Kevin H Qin; Alexander J Li; Ofir Hagag; Eric J Wang; Maya Sabharwal; William Wagstaff; Russell R Reid; Michael J Lee; Jennifer Moriatis Wolf; Mostafa El Dafrawy; Kelly Hynes; Jason Strelzow; Sherwin H Ho; Tong-Chuan He; Aravind Athiviraham
Journal:  Front Bioeng Biotechnol       Date:  2021-03-25

6.  Talar OsteoPeriostic grafting from the Iliac Crest (TOPIC) for large medial talar osteochondral defects : Operative technique.

Authors:  G M M J Kerkhoffs; J N Altink; S A S Stufkens; J Dahmen
Journal:  Oper Orthop Traumatol       Date:  2020-09-09       Impact factor: 1.154

7.  Implantation of Various Cell-Free Matrixes Does Not Contribute to the Restoration of Hyaline Cartilage within Full-Thickness Focal Defects.

Authors:  Shabnam I Ibragimova; Ekaterina V Medvedeva; Irina A Romanova; Leonid P Istranov; Elena V Istranova; Aleksey V Lychagin; Andrey A Nedorubov; Peter S Timashev; Vladimir I Telpukhov; Andrei S Chagin
Journal:  Int J Mol Sci       Date:  2021-12-28       Impact factor: 5.923

Review 8.  Scaffold-Based Tissue Engineering Strategies for Osteochondral Repair.

Authors:  Jiang-Nan Fu; Xing Wang; Meng Yang; You-Rong Chen; Ji-Ying Zhang; Rong-Hui Deng; Zi-Ning Zhang; Jia-Kuo Yu; Fu-Zhen Yuan
Journal:  Front Bioeng Biotechnol       Date:  2022-01-11

9.  Evaluation of in Vivo Response of Three Biphasic Scaffolds for Osteochondral Tissue Regeneration in a Sheep Model.

Authors:  Alberto M Crovace; Alessia Di Giancamillo; Francesca Gervaso; Laura Mangiavini; Davide Zani; Francesca Scalera; Barbara Palazzo; Daniela Izzo; Marco Agnoletto; Marco Domenicucci; Corrado Sosio; Alessandro Sannino; Mauro Di Giancamillo; Giuseppe M Peretti
Journal:  Vet Sci       Date:  2019-11-09
  9 in total

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