Literature DB >> 29096397

Porous composite scaffold incorporating osteogenic phytomolecule icariin for promoting skeletal regeneration in challenging osteonecrotic bone in rabbits.

Yuxiao Lai1, Huijuan Cao2, Xinluan Wang3, Shukui Chen4, Ming Zhang4, Nan Wang4, Zhihong Yao5, Yi Dai5, Xinhui Xie6, Peng Zhang2, Xinsheng Yao5, Ling Qin7.   

Abstract

Steroid-associated osteonecrosis (SAON) often requires surgical core decompression (CD) in the early stage for removal of necrotic bone to facilitate repair where bone grafts are needed for filling bone defect and avoiding subsequent joint collapse. In this study, we developed a bioactive composite scaffold incorporated with icariin, a unique phytomolecule that can provide structural and mechanical support and facilitate bone regeneration to fill into bone defects after surgical CD in established SAON rabbit model. An innovative low-temperature 3D printing technology was used to fabricate the poly (lactic-co-glycolic acid)/β-calcium phosphate/icariin (PLGA/TCP/Icariin, PTI) scaffold. The cytocompatibility of the PTI scaffold was tested in vitro, and the osteogenesis properties of PTI scaffolds were assessed in vivo in the SAON rabbit models. Our results showed that the fabricated PTI scaffold had a well-designed biomimic structure that was precisely printed to provide increased mechanical support and stable icariin release from the scaffold for bone regeneration. Furthermore, our in vivo study indicated that the PTI scaffold could enhanced the mechanical properties of new bone tissues and improved angiogenesis within the implanted region in SAON rabbit model than those of PLGA/TCP (PT) scaffold. The underlying osteoblastic mechanism was investigated using MC3T3-E1 cells in vitro and revealed that icariin could facilitate MC3T3-E1 cells ingrowth into the PTI scaffold and regulate osteoblastic differentiation. The PTI scaffold exhibited superior biodegradability, biocompatibility, and osteogenic capability compared with those of PT scaffold. In summary, the PTI composite scaffold which incorporated bioactive phyto-compounds is a promising potential strategy for bone tissue engineering and regeneration in patients with challenging SAON.
Copyright © 2017 Elsevier Ltd. All rights reserved.

Entities:  

Keywords:  3D printing; Bone regeneration; Osteogenesis; Porous scaffold; Steroid-associated osteonecrosis(SAON)

Mesh:

Substances:

Year:  2017        PMID: 29096397     DOI: 10.1016/j.biomaterials.2017.10.025

Source DB:  PubMed          Journal:  Biomaterials        ISSN: 0142-9612            Impact factor:   12.479


  47 in total

1.  Three-dimensional Printed Mg-Doped β-TCP Bone Tissue Engineering Scaffolds: Effects of Magnesium Ion Concentration on Osteogenesis and Angiogenesis In Vitro.

Authors:  Yifan Gu; Jing Zhang; Xinzhi Zhang; Guiping Liang; Tao Xu; Wei Niu
Journal:  Tissue Eng Regen Med       Date:  2019-06-17       Impact factor: 4.169

2.  Innovations in Craniofacial Bone and Periodontal Tissue Engineering - From Electrospinning to Converged Biofabrication.

Authors:  Zeynep Aytac; Nileshkumar Dubey; Arwa Daghrery; Jessica A Ferreira; Isaac J de Souza Araújo; Miguel Castilho; Jos Malda; Marco C Bottino
Journal:  Int Mater Rev       Date:  2021-07-05       Impact factor: 15.750

Review 3.  Enhancing Stem Cell-Based Therapeutic Potential by Combining Various Bioengineering Technologies.

Authors:  In-Sun Hong
Journal:  Front Cell Dev Biol       Date:  2022-07-05

Review 4.  Bone Tissue Engineering through 3D Bioprinting of Bioceramic Scaffolds: A Review and Update.

Authors:  Ahmad Taha Khalaf; Yuanyuan Wei; Jun Wan; Jiang Zhu; Yu Peng; Samiah Yasmin Abdul Kadir; Jamaludin Zainol; Zahraa Oglah; Lijia Cheng; Zheng Shi
Journal:  Life (Basel)       Date:  2022-06-16

Review 5.  Traditional Chinese medicine promotes bone regeneration in bone tissue engineering.

Authors:  Zheng-Rong Gao; Yun-Zhi Feng; Ya-Qiong Zhao; Jie Zhao; Ying-Hui Zhou; Qin Ye; Yun Chen; Li Tan; Shao-Hui Zhang; Yao Feng; Jing Hu; Ze-Yue Ou-Yang; Marie Aimee Dusenge; Yue Guo
Journal:  Chin Med       Date:  2022-07-20       Impact factor: 4.546

Review 6.  Polyphenol-Enriched Composite Bone Regeneration Materials: A Systematic Review of In Vitro Studies.

Authors:  Kamila Checinska; Maciej Checinski; Katarzyna Cholewa-Kowalska; Maciej Sikora; Dariusz Chlubek
Journal:  Int J Mol Sci       Date:  2022-07-05       Impact factor: 6.208

7.  Comparison of the outcome of different bone grafts combined with modified core decompression for the treatment of ARCO II stage femoral head necrosis.

Authors:  Junming Wan; Yanqing Hu; Jiachun Li; Yuqing Zeng; Haiyong Ren
Journal:  Int Orthop       Date:  2022-05-10       Impact factor: 3.479

8.  Synergistically Promoting Bone Regeneration by Icariin-Incorporated Porous Microcarriers and Decellularized Extracellular Matrix Derived From Bone Marrow Mesenchymal Stem Cells.

Authors:  Mengyang Zhou; Min Guo; Xincui Shi; Jie Ma; Shutao Wang; Shuo Wu; Weiqun Yan; Feng Wu; Peibiao Zhang
Journal:  Front Bioeng Biotechnol       Date:  2022-04-07

9.  3D-Plotted Beta-Tricalcium Phosphate Scaffolds with Smaller Pore Sizes Improve In Vivo Bone Regeneration and Biomechanical Properties in a Critical-Sized Calvarial Defect Rat Model.

Authors:  Jingjing Diao; Jun OuYang; Ting Deng; Xiao Liu; Yanting Feng; Naru Zhao; Chuanbin Mao; Yingjun Wang
Journal:  Adv Healthc Mater       Date:  2018-07-25       Impact factor: 9.933

10.  Fabrication of a nanoparticle-containing 3D porous bone scaffold with proangiogenic and antibacterial properties.

Authors:  Juan L Paris; Nuria Lafuente-Gómez; M Victoria Cabañas; Jesús Román; Juan Peña; María Vallet-Regí
Journal:  Acta Biomater       Date:  2019-01-14       Impact factor: 8.947

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