Literature DB >> 26525451

Mesoporous bioactive glass nanolayer-functionalized 3D-printed scaffolds for accelerating osteogenesis and angiogenesis.

Yali Zhang1, Lunguo Xia, Dong Zhai, Mengchao Shi, Yongxiang Luo, Chun Feng, Bing Fang, Jingbo Yin, Jiang Chang, Chengtie Wu.   

Abstract

The hierarchical microstructure, surface and interface of biomaterials are important factors influencing their bioactivity. Porous bioceramic scaffolds have been widely used for bone tissue engineering by optimizing their chemical composition and large-pore structure. However, the surface and interface of struts in bioceramic scaffolds are often ignored. The aim of this study is to incorporate hierarchical pores and bioactive components into the bioceramic scaffolds by constructing nanopores and bioactive elements on the struts of scaffolds and further improve their bone-forming activity. Mesoporous bioactive glass (MBG) modified β-tricalcium phosphate (MBG-β-TCP) scaffolds with a hierarchical pore structure and a functional strut surface (∼100 nm of MBG nanolayer) were successfully prepared via 3D printing and spin coating. The compressive strength and apatite-mineralization ability of MBG-β-TCP scaffolds were significantly enhanced as compared to β-TCP scaffolds without the MBG nanolayer. The attachment, viability, alkaline phosphatase (ALP) activity, osteogenic gene expression (Runx2, BMP2, OPN and Col I) and protein expression (OPN, Col I, VEGF, HIF-1α) of rabbit bone marrow stromal cells (rBMSCs) as well as the attachment, viability and angiogenic gene expression (VEGF and HIF-1α) of human umbilical vein endothelial cells (HUVECs) in MBG-β-TCP scaffolds were significantly upregulated compared with conventional bioactive glass (BG)-modified β-TCP (BG-β-TCP) and pure β-TCP scaffolds. Furthermore, MBG-β-TCP scaffolds significantly enhanced the formation of new bone in vivo as compared to BG-β-TCP and β-TCP scaffolds. The results suggest that application of the MBG nanolayer to modify 3D-printed bioceramic scaffolds offers a new strategy to construct hierarchically porous scaffolds with significantly improved physicochemical and biological properties, such as mechanical properties, osteogenesis, angiogenesis and protein expression for bone tissue engineering applications, in which the incorporation of nanostructures and bioactive components into the scaffold struts synergistically play a key role in the improved bone formation.

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Year:  2015        PMID: 26525451     DOI: 10.1039/c5nr05421d

Source DB:  PubMed          Journal:  Nanoscale        ISSN: 2040-3364            Impact factor:   7.790


  27 in total

Review 1.  3D Printing of Calcium Phosphate Ceramics for Bone Tissue Engineering and Drug Delivery.

Authors:  Ryan Trombetta; Jason A Inzana; Edward M Schwarz; Stephen L Kates; Hani A Awad
Journal:  Ann Biomed Eng       Date:  2016-06-20       Impact factor: 3.934

2.  Enhanced cellular osteogenic differentiation on Zn-containing bioglass incorporated TiO2 nanorod films.

Authors:  Meng He; Xiaoyi Chen; Kui Cheng; Lingqing Dong; Wenjian Weng; Huiming Wang
Journal:  J Mater Sci Mater Med       Date:  2018-08-17       Impact factor: 3.896

Review 3.  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 4.  3D Printing for Bone Regeneration.

Authors:  Amit Bandyopadhyay; Indranath Mitra; Susmita Bose
Journal:  Curr Osteoporos Rep       Date:  2020-10       Impact factor: 5.096

5.  Amorphous Silicon Oxynitrophosphide-Coated Implants Boost Angiogenic Activity of Endothelial Cells.

Authors:  Felipe A do Monte; Kamal R Awad; Neelam Ahuja; Harry K W Kim; Pranesh Aswath; Marco Brotto; Venu G Varanasi
Journal:  Tissue Eng Part A       Date:  2019-09-03       Impact factor: 3.845

6.  The effect of enhanced bone marrow in conjunction with 3D-printed PLA-HA in the repair of critical-sized bone defects in a rabbit model.

Authors:  Zhiqing Liu; Wenxiang Chu; Linyuan Zhang; Yueting Wang; Zanjing Zhai; Fengxiang Liu
Journal:  Ann Transl Med       Date:  2021-07

7.  Patterning of Endothelial Cells and Mesenchymal Stem Cells by Laser-Assisted Bioprinting to Study Cell Migration.

Authors:  Jean-Michel Bourget; Olivia Kérourédan; Manuela Medina; Murielle Rémy; Noélie Brunehilde Thébaud; Reine Bareille; Olivier Chassande; Joëlle Amédée; Sylvain Catros; Raphaël Devillard
Journal:  Biomed Res Int       Date:  2016-10-19       Impact factor: 3.411

Review 8.  Three dimensional printed nanostructure biomaterials for bone tissue engineering.

Authors:  Tesfa Marew; Gebremariam Birhanu
Journal:  Regen Ther       Date:  2021-05-28       Impact factor: 3.419

9.  Fabrication and Characterization of Cinnamaldehyde-Loaded Mesoporous Bioactive Glass Nanoparticles/PHBV-Based Microspheres for Preventing Bacterial Infection and Promoting Bone Tissue Regeneration.

Authors:  Kittipat Chotchindakun; Jeeraporn Pekkoh; Jetsada Ruangsuriya; Kai Zheng; Irem Unalan; Aldo R Boccaccini
Journal:  Polymers (Basel)       Date:  2021-05-29       Impact factor: 4.329

10.  Systematical Evaluation of Mechanically Strong 3D Printed Diluted magnesium Doping Wollastonite Scaffolds on Osteogenic Capacity in Rabbit Calvarial Defects.

Authors:  Miao Sun; An Liu; Huifeng Shao; Xianyan Yang; Chiyuan Ma; Shigui Yan; Yanming Liu; Yong He; Zhongru Gou
Journal:  Sci Rep       Date:  2016-09-23       Impact factor: 4.379

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