Literature DB >> 30986527

Construction of vascularized tissue-engineered bone with polylysine-modified coral hydroxyapatite and a double cell-sheet complex to repair a large radius bone defect in rabbits.

Hualin Zhang1, Yueli Zhou2, Na Yu3, Hairong Ma4, Kairong Wang4, Jinsong Liu5, Wen Zhang4, Zhuoyan Cai4, Yalan He4.   

Abstract

In this study, the potential of vascularized tissue-engineered bone constructed by a double cell-sheet (DCS) complex and polylysine (PLL)-modified coralline hydroxyapatite (CHA) to repair large radius bone defects was investigated in rabbits. Firstly, the DCS complex was obtained after rabbit adipose-derived mesenchymal stem cell (ADSC) culture was induced. Secondly, PLL-CHA composite scaffolds with different concentrations of PLL were prepared by the soaking and vacuum freeze-drying methods, and then the scaffolds were characterized by X-ray diffraction (XRD), Fourier transform infrared (FTIR) spectroscopy, compression performance testing and cytocompatibility evaluation. Thirdly, DCS-PLL-CHA vascularized tissue-engineered bone was constructed in vitro and transplanted into a large radius bone defect model in rabbits. Finally, the potential of the DCS-PLL-CHA vascularized tissue-engineered bone to repair the large bone defect was evaluated through general observations, laser speckle imaging, scanning electron microscopy (SEM), histological staining, radiography observations and RT-PCR. The in vitro experimental results showed that the DCS complex provided a very large cell reserve, which carried a large number of osteoblasts and vascular endothelial cells that were induced in vitro. When the DCS complex was combined with the PLL-CHA scaffold in vitro, the effects of PLL on cell adhesion, proliferation and differentiation led to a situation similar to the chemotaxis of the body, making the combined complex more conducive to graft cellularization than the DCS complex alone. The in vivo experiments showed blood supply on the surface of the callus in each group, and the amount of blood perfusion on the surface of the defect area was almost equal among the groups. At 12 weeks, the surface of the DCS-PLL-CHA group was completely wrapped by bone tissue and osteoids, the cortical bone image was basically continuous, and the medullary cavity was mainly perforated. A large amount of well-arranged lamellar bone was formed, a small amount of undegraded CHA exhibited a linear pattern, and a large amount of bone filling could be seen in the pores. At 12 weeks, the expression levels of BGLAP, SPP1 and VEGF were similar in each group, but PECAM1 expression was higher in the DCS-PLL-CHA group than in the autogenous bone group and CHA group. The results showed that PLL could effectively promote the adhesion, proliferation and differentiation of ADSCs and that DCS-PLL-CHA vascularized tissue-engineered bone has potential for bone regeneration and bone reconstruction and can be used to repair large bone defects. STATEMENT OF SIGNIFICANCE: 1. PLL-CHA composite scaffolds with different concentrations of PLL were prepared by the soaking and vacuum freeze-drying methods. 2. The vascularized tissue-engineered bone was constructed by the double cell sheet (DCS) complex combined with PLL-CHA scaffolds. 3. The DCS-PLL-CHA vascularized tissue-engineered bone has potential for bone regeneration and bone reconstruction and can be used to repair large bone defects.
Copyright © 2019 Acta Materialia Inc. Published by Elsevier Ltd. All rights reserved.

Entities:  

Keywords:  Coralline hydroxyapatite; Double cell-sheet complex; Large bone defect; Polylysine; Vascularized tissue-engineered bone

Mesh:

Substances:

Year:  2019        PMID: 30986527     DOI: 10.1016/j.actbio.2019.04.024

Source DB:  PubMed          Journal:  Acta Biomater        ISSN: 1742-7061            Impact factor:   8.947


  8 in total

1.  3D-Printed β-Tricalcium Phosphate Scaffolds Promote Osteogenic Differentiation of Bone Marrow-Deprived Mesenchymal Stem Cells in an N6-methyladenosine-Dependent Manner.

Authors:  Xin Jiao; Xin Sun; Wentao Li; Wenxiang Chu; Yuxin Zhang; Yiming Li; Zengguang Wang; Xianhao Zhou; Jie Ma; Chen Xu; Kerong Dai; Jinwu Wang; Yaokai Gan
Journal:  Int J Bioprint       Date:  2022-03-22

2.  Desktop-Stereolithography 3D Printing of a Polyporous Extracellular Matrix Bioink for Bone Defect Regeneration.

Authors:  Yunxiang Luo; Hao Pan; Jiuzhou Jiang; Chenchen Zhao; Jianfeng Zhang; Pengfei Chen; Xianfeng Lin; Shunwu Fan
Journal:  Front Bioeng Biotechnol       Date:  2020-11-06

3.  Polylysine Enriched Matrices: A Promising Approach for Vascular Grafts.

Authors:  Luca Fusaro; Marta Calvo Catoira; Martina Ramella; Federico Sacco Botto; Maria Talmon; Luigia Grazia Fresu; Araida Hidalgo-Bastida; Francesca Boccafoschi
Journal:  Front Bioeng Biotechnol       Date:  2020-04-03

4.  Comparison of the Translational Potential of Human Mesenchymal Progenitor Cells from Different Bone Entities for Autologous 3D Bioprinted Bone Grafts.

Authors:  Anna-Klara Amler; Patrick H Dinkelborg; Domenic Schlauch; Jacob Spinnen; Stefan Stich; Roland Lauster; Michael Sittinger; Susanne Nahles; Max Heiland; Lutz Kloke; Carsten Rendenbach; Benedicta Beck-Broichsitter; Tilo Dehne
Journal:  Int J Mol Sci       Date:  2021-01-14       Impact factor: 5.923

Review 5.  Bone Tissue Engineering in the Treatment of Bone Defects.

Authors:  Nannan Xue; Xiaofeng Ding; Rizhong Huang; Ruihan Jiang; Heyan Huang; Xin Pan; Wen Min; Jun Chen; Jin-Ao Duan; Pei Liu; Yiwei Wang
Journal:  Pharmaceuticals (Basel)       Date:  2022-07-17

Review 6.  Current applications of adipose-derived mesenchymal stem cells in bone repair and regeneration: A review of cell experiments, animal models, and clinical trials.

Authors:  Zhengyue Zhang; Xiao Yang; Xiankun Cao; An Qin; Jie Zhao
Journal:  Front Bioeng Biotechnol       Date:  2022-09-07

7.  The combination of a 3D-Printed porous Ti-6Al-4V alloy scaffold and stem cell sheet technology for the construction of biomimetic engineered bone at an ectopic site.

Authors:  Zhifa Wang; Leng Han; Ye Zhou; Jiacheng Cai; Shuohui Sun; Junli Ma; Weijian Wang; Xiao Li; Limin Ma
Journal:  Mater Today Bio       Date:  2022-09-15

8.  Comparison of osteogenesis of bovine bone xenografts between true bone ceramics and decalcified bone matrix.

Authors:  Gang Xu; Ruizhou Guo; Liwei Han; Xiaomei Bie; Xiantong Hu; Li Li; Zhonghai Li; Yantao Zhao
Journal:  J Mater Sci Mater Med       Date:  2022-10-15       Impact factor: 4.727

  8 in total

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