Journal of Inorganic Materials ›› 2022, Vol. 37 ›› Issue (4): 427-435.DOI: 10.15541/jim20210264
Special Issue: 【生物材料】骨骼与齿类组织修复(202409); 【制备方法】3D打印(202409)
• RESEARCH ARTICLE • Previous Articles Next Articles
SHI Jixiang1(), ZHAI Dong2, ZHU Min1(
), ZHU Yufang2(
)
Received:
2021-04-19
Revised:
2021-06-25
Published:
2022-04-20
Online:
2021-07-20
Contact:
ZHU Ming, associate professor. E-mail: mzhu@usst.edu.cn;About author:
SHI Jixiang (1991-), male, Master candidate. E-mail: 929789873@qq.com
Supported by:
CLC Number:
SHI Jixiang, ZHAI Dong, ZHU Min, ZHU Yufang. Preparation and Characterization of Bioactive Glass-Manganese Dioxide Composite Scaffolds[J]. Journal of Inorganic Materials, 2022, 37(4): 427-435.
Fig. 2 (A1, A2, B1, B2, C1, C2, D1, D2) SEM images and corresponding (A3, B3, C3, D3) EDS spectra of BG and BGM scaffolds (A1, A2, A3) BG scaffold; (B1, B2, B3) BGM1 scaffold; (C1, C2, C3) BGM5 scaffold; (D1, D2, D3) BGM9 scaffold
Fig. 5 (A) Degradation curves of BG and BGM scaffolds in Tris-HCl for 28 d, and (B) pH change curves of SBF after BG and BGM scaffolds soaking for 14 d
Fig. 6 (A) Dissolved oxygen levels in different concentrations of H2O2 solution after immersing BGM9 scaffolds, and (B) dissolved oxygen change curves in 2 mmol/L H2O2 solutions after immersing BGM scaffolds (cycle test for 3 times)
[1] | SHIEKH P A, SINGH A, KUMAR A. Oxygen releasing antioxidant cryogel scaffolds with sustained oxygen delivery for tissue engineering applications. ACS Applied Materials & Interfaces, 2018, 10(22): 18458-18469. |
[2] |
LOVETT M, LEE K, EDWARDS A, et al. Vascularization strategies for tissue engineering. Tissue Engineering Part B: Reviews, 2009, 15(3): 353-370.
DOI URL |
[3] |
BECQUART P, CAMBON-BINDER A, MONFOULET L E, et al. Ischemia is the prime but not the only cause of human multipotent stromal cell death in tissue-engineered constructs in vivo. Tissue Engineering Part A, 2012, 18(19/20): 2084-2094.
DOI URL |
[4] |
PISU M, LAI N, CINCOTTI A, et al. Modeling of engineered cartilage growth in rotating bioreactors. Chemical Engineering Science, 2004, 59: 5035-5040.
DOI URL |
[5] |
TOURI M, MOZTARZADEH F, OSMAN N A A, et al. 3D-printed biphasic calcium phosphate scaffolds coated with an oxygen generating system for enhancing engineered tissue survival. Material Science and Engineering C, 2018, 84: 236-242.
DOI URL |
[6] |
LÜ X G, LI Z, CHEN S Y, et al. Structural and functional evaluation of oxygenating keratin/silk fibroin scaffold and initial assessment of their potential for urethral tissue engineering. Biomaterials, 2016, 84: 99-110.
DOI URL |
[7] |
LEE E M, JUNG J I, ALAM Z, et al. Effect of an oxygen- generating scaffold on the viability and insulin secretion function of porcine neonatal pancreatic cell clusters. Xenotransplantation, 2018, 25(2):e12378.
DOI URL |
[8] |
KUMAR S, ADJEI I M, BROWN S, et al. Manganese dioxide nanoparticles protect cartilage from inflammation-induced oxidative stress. Biomaterials, 2019, 224: 119467.
DOI URL |
[9] |
BIZEAU J, TAPEINOS C, MARELLA C, et al. Synthesis and characterization of hyaluronic acid coated manganese dioxide microparticles that act as ROS scavengers. Colloids and Surfaces B: Biointerfaces, 2017, 159: 30-38.
DOI URL |
[10] |
LI Q, REN J J, CHEN Q B, et al. A HMCuS@MnO2 nanocomplex responsive to multiple tumor environmental clues for photoacoustic/ fluorescence/magnetic resonance trimodal imaging-guided and enhanced photothermal/photodynamic therapy. Nanoscale, 2020, 12(23): 12508-12521.
DOI URL |
[11] |
WANG Y D, SONG S Z, LU T, et al. Oxygen-supplementing mesoporous polydopamine nanosponge with WS2 QDs-embedded for CT/MSOT/MR imaging and thermoradiotherapy of hypoxic cancer. Biomaterials, 2019, 220: 119405.
DOI URL |
[12] |
ANAND A, LALZAWMLIANA V, KUMAR V, et al. Preparation and in vivo biocompatibility studies of different mesoporous bioactive glasses. Journal of the Mechanical Behavior of Biomedical Materials, 2019, 89: 89-98.
DOI URL |
[13] |
KARGOZAR S, MONTAZERIAN M, HAMZEHLOU S, et al. Mesoporous bioactive glasses: promising platforms for antibacterial strategies. Acta Biomaterialia, 2018, 81: 1-19.
DOI URL |
[14] | SAEID K, FRANCESCO B, SEPIDEH H, et al. Bioactive glasses entering the mainstream. Drug Discovery Today, 2018, 23: S1359644618300394. |
[15] |
MUBINA M S K, SHAILAJHA S, SANKARANARAYANAN R, et al. In vitro bioactivity, mechanical behavior and antibacterial properties of mesoporous SiO2-CaO-Na2O-P2O5 nano bioactive glass ceramics. Journal of the Mechanical Behavior of Biomedical Materials, 2019, 100: 103379.
DOI URL |
[16] |
FU S Y, ZHU M, ZHU Y F. Organosilicon polymer-derived ceramics: an overview. Journal of Advanced Ceramics, 2019, 8(4): 457-478.
DOI URL |
[17] |
CHEN Z, SUN X H, SHANG Y P, et al. Dense ceramics with complex shape fabricated by 3D printing: a review. Journal of Advanced Ceramics, 2021, 10(2): 195-218.
DOI URL |
[18] |
YANG L L, ZENG X J, DITTA A, et al. Preliminary 3D printing of large inclined-shaped alumina ceramic parts by direct ink writing. Journal of Advanced Ceramics, 2020, 9(3): 312-319.
DOI URL |
[19] |
ZHAO Z, ZHOU G X, YANG Z H, et al. Direct ink writing of continuous SiO2 fiber reinforced wave-transparent ceramics. Journal of Advanced Ceramics, 2020, 9(4): 403-412.
DOI URL |
[20] |
WU C T, LUO Y X, CUNIBERTI G, et al. Three-dimensional printing of hierarchical and tough mesoporous bioactive glass scaffolds with a controllable pore architecture, excellent mechanical strength and mineralization ability. Acta Biomaterialia, 2011, 7(6): 2644-2650.
DOI URL |
[21] |
LI L, HU H X, ZHU Y F, et al. 3D-printed ternary SiO2-CaO-P2O5 bioglass-ceramic scaffolds with tunable compositions and properties for bone regeneration. Ceramics International, 2019, 45(8): 10997-11005.
DOI URL |
[22] |
YE X, JIANG X, CHEN L, et al. Effect of manganese dioxide crystal structure on adsorption of SO2 by DFT and experimental study. Applied Surface Science, 2020, 521: 146477.
DOI URL |
[23] |
REN L L, ZHOU D Y, WANG J J, et al. Biomaterial-based flower-like MnO2@carbon microspheres for rapid adsorption of amoxicillin from wastewater. Journal of Molecular Liquids, 2020, 309: 113074.
DOI URL |
[24] |
CHEN Y, YE D L, WU M Y, et al. Break-up of two-dimensional MnO2nanosheets promotes ultrasensitive pH-triggered theranostics of cancer. Advanced Materials, 2014, 26(41): 7019-7026.
DOI URL |
[25] |
HU X N, SHI L Y, ZHANG D S, et al. Accelerating the decomposition of KMnO4 by photolysis and auto-catalysis: a green approach to synthesize a layered birnessite-type MnO2 assembled hierarchical nanostructure. RSC Advances, 2016, 6(17): 14192-14198.
DOI URL |
[26] |
SHAABANI A, AFARIDOUN H, SHAABANI S. Natural hydroxyapatite-supported MnO2: a green heterogeneous catalyst for selective aerobic oxidation of alkylarenes and alcohols. Applied Organometallic Chemistry, 2016, 30(9): 772-776.
DOI URL |
[27] |
HAO X L, ZHAO J Z, SONG Y H, et al. Surfactant-assisted synthesis of birnessite-type MnO2 nanoflowers. Journal of Nano Research, 2018, 53: 1-6.
DOI URL |
[28] |
JING X N, XU Y Z, LIU D M, et al. Intelligent nanoflowers: a full tumor microenvironment-responsive multimodal cancer theranostic nanoplatform. Nanoscale, 2019, 11(33): 15508-15518.
DOI URL |
[29] |
HE D G, HE X X, WANG K, et al. Redox-responsive degradable honeycomb manganese oxide nanostructures as effective nanocarriers for intracellular glutathione-triggered drug release. Chemical Communications, 2014, 51(4): 776-779.
DOI URL |
[30] |
CHEN B, WANG F. NaYbF4@CaF2 core-satellite upconversion nanoparticles: one-pot synthesis and sensitive detection of glutathione. Nanoscale, 2018, 10(42): 19898-19905.
DOI URL |
[31] |
WANG Z Z, ZHANG Y, JU E G, et al. Biomimetic nanoflowers by self-assembly of nanozymes to induce intracellular oxidative damage against hypoxic tumors. Nature Communications, 2018, 9(1):3334.
DOI URL |
[32] | YAN X X, YU C Z, ZHOU X F, et al. Highly ordered mesoporous bioactive glasses with superior in vitro bone-forming bioactivities. Angewandte Chemie International Edition, 2004, 116: 6106-6110. |
[33] |
DENG R R, XIE X J, VENDRELL M, et al. Intracellular glutathione detection using MnO2-nanosheet-modified upconversion nanoparticles. Journal of the American Chemical Society, 2011, 133(50): 20168-20171.
DOI URL |
[34] |
ZHANG L H, LIAN J S, WU L Y, et al. Synthesis of a thin-layer MnO2 nanosheet-coated Fe3O4 nanocomposite as a magnetically separable photocatalyst. Langmuir, 2014, 30(23): 7006-7013.
DOI URL |
[35] | FRÖHLICH M, GRAYSON W L, WAN L Q, et al. Tissue engineered bone grafts: biological requirements, tissue culture and clinical relevance. Current Stem Cell Research & Therapy, 2008, 3(4): 254-264. |
[36] |
AZIZI F, HEIDARI F, FAHIMIPOUR F, et al. Evaluation of mechanical and biocompatibility properties of hydroxyapatite/manganese dioxide nanocomposite scaffolds for bone tissue engineering application. International Journal of Applied Ceramic Technology, 2020, 17(5): 2439-2449.
DOI URL |
[37] |
HSIEH T E, LIN S J, CHEN L C, et al. Optimizing an injectable composite oxygen-generating system for relieving tissue hypoxia. Frontiers in Bioengineering and Biotechnology, 2020, 8: 511.
DOI URL |
[38] |
LACY F, KAILASAM M T, O'CONNOR D T, et al. Plasma hydrogen peroxide production in human essential hypertension role of heredity, gender, and ethnicity. Hypertension, 2000, 36(5): 878-884.
DOI URL |
[39] | BURGOYNE J R, OKA S I, ALE-AGHA N, et al. Hydrogen peroxide sensing and signaling by protein kinases in the cardiovascular system. Antioxidants & Redox Signaling, 2013, 18(9): 1042-1052. |
[40] |
WANG J Q, ZHANG Y Q, ARCHIBONG E, et al. Leveraging H2O2 levels for biomedical applications. Advanced Biosystems, 2017, 1(9):1700084.
DOI URL |
[41] | TAPEINOS C, LARRAÑAGA A, SARASUA J R, et al. Functionalised collagen spheres reduce H2O2 mediated apoptosis by scavenging overexpressed ROS. Nanomedicine, 2018, 14(7): 2397-2405. |
[42] |
JÄGER E, HÖCHERL A, JANOUŠKOVÁ O, et al. Fluorescent boronate-based polymer nanoparticles with reactive oxygen species (ROS)-triggered cargo release for drug-delivery applications. Nanoscale, 2016, 8(13): 6958-6963.
DOI URL |
[43] |
DEEPAGAN V G, KWON S, YOU D G, et al. In situ diselenide- crosslinked polymeric micelles for ROS-mediated anticancer drug delivery. Biomaterials, 2016, 103: 56-66.
DOI URL |
[44] |
WU C T, RAMASWAMY Y, ZHU Y F, et al. The effect of mesoporous bioactive glass on the physiochemical, biological and drug-release properties of poly(DL-lactide-co-glycolide) films. Biomaterials, 2009, 30(12): 2199-2208.
DOI URL |
[45] |
WU C T, CHANG J. Degradation, bioactivity, and cytocompatibility of diopside, akermanite, and bredigite ceramics. Journal of Biomedical Materials Research Part B Applied Biomaterials, 2010, 83B(1): 153-160.
DOI URL |
[46] |
NAWAZ Q, REHMAN M A U, ROETHER J A, et al. Bioactive glass based scaffolds incorporating gelatin/manganese doped mesoporous bioactive glass nanoparticle coating. Ceramics International, 2019, 45(12): 14608-14613.
DOI URL |
[1] | SHI Zhe, LIU Weiye, ZHAI Dong, XIE Jianjun, ZHU Yufang. Akermanite Scaffolds for Bone Tissue Engineering: 3D Printing Using Polymer Precursor and Scaffold Properties [J]. Journal of Inorganic Materials, 2023, 38(7): 763-770. |
[2] | YUAN Jingkun, XIONG Shufeng, CHEN Zhangwei. Research Trends and Challenges of Additive Manufacturing of Polymer-derived Ceramics [J]. Journal of Inorganic Materials, 2023, 38(5): 477-488. |
[3] | WANG Lukai, FENG Junzong, JIANG Yonggang, LI Liangjun, FENG Jian. Direct-ink-writing 3D Printing of Ceramic-based Porous Structures: a Review [J]. Journal of Inorganic Materials, 2023, 38(10): 1133-1148. |
[4] | ZHU Junyi, ZHANG Cheng, LUO Zhongqiang, CAO Jiwei, LIU Zhiyuan, WANG Pei, LIU Changyong, CHEN Zhangwei. Influence of Debinding Process on the Properties of Photopolymerization 3D Printed Cordierite Ceramics [J]. Journal of Inorganic Materials, 2022, 37(3): 317-324. |
[5] | LI Qi, HUANG Yi, QIAN Bin, XU Beibei, CHEN Liying, XIAO Wenge, QIU Jianrong. Photo Curing and Pressureless Sintering of Orange-emitting Glass-ceramics [J]. Journal of Inorganic Materials, 2022, 37(3): 289-296. |
[6] | YANG Yong, GUO Xiaotian, TANG Jie, CHANG Haotian, HUANG Zhengren, HU Xiulan. Research Progress and Prospects of Non-oxide Ceramic in Stereolithography Additive Manufacturing [J]. Journal of Inorganic Materials, 2022, 37(3): 267-277. |
[7] | LI Qiaolei, GU Yue, YU Xuehua, ZHANG Chaowei, ZOU Mingke, LIANG Jingjing, LI Jinguo. Effect of Sintering Temperature on Surface Morphology and Roughness of 3D-printed Silicon Ceramic Cores [J]. Journal of Inorganic Materials, 2022, 37(3): 325-332. |
[8] | WU Zhongcao, HUAN Zhiguang, ZHU Yufang, WU Chengtie. 3D Printing and Characterization of Microsphere Hydroxyapatite Scaffolds [J]. Journal of Inorganic Materials, 2021, 36(6): 601-607. |
[9] | ZHANG Li, YANG Xianfeng, XU Xiewen, GUO Jinyu, ZHOU Zhe, LIU Peng, XIE Zhipeng. 3D Printed Zirconia Ceramics via Fused Deposit Modeling and Its Mechanical Properties [J]. Journal of Inorganic Materials, 2021, 36(4): 436-442. |
[10] | DONG Shaojie,WANG Xudong,SHEN Steve Guofang,WANG Xiaohong,LIN Kaili. Research Progress on Functional Modifications and Applications of Bioceramic Scaffolds [J]. Journal of Inorganic Materials, 2020, 35(8): 867-881. |
[11] | LI Xue-Lin, ZHU Jian-Feng, JIAO Yu-Hong, HUANG Jia-Xuan, ZHAO Qian-Nan. Manganese Dioxide Morphology on Electrochemical Performance of Ti3C2Tx@MnO2 Composites [J]. Journal of Inorganic Materials, 2020, 35(1): 119-125. |
[12] | Zhi-Qiang SUN, Xiao-Bo YANG, Hua-Dong WANG, De-Li LI, Shu-Qin LI, Yi LÜ. Ceramic/Resin Composite Powders with Uniform Resin Layer Synthesized from SiO2 Spheres for 3D Technology [J]. Journal of Inorganic Materials, 2019, 34(5): 567-572. |
[13] | Sheng-Yang FU, Bin YU, Hui-Feng DING, Guo-Dong SHI, Yu-Fang ZHU. Zirconia Incorporation in 3D Printed β-Ca2SiO4 Scaffolds on Their Physicochemical and Biological Property [J]. Journal of Inorganic Materials, 2019, 34(4): 444-454. |
[14] | XIN Chen, QI Xin, ZHU Min, ZHAO Shi-Chang, ZHU Yu-Fang. Hydroxyapatite Whisker-reinforced Composite Scaffolds Through 3D Printing for Bone Repair [J]. Journal of Inorganic Materials, 2017, 32(8): 837-844. |
[15] | HOU Yuan, ZHANG Bang-Wen, XING Rui-Guang, BULIN Chao-Ke. One-step Synthesis and Electrochemical Properties of Reduced Graphene Oxide/MnO2 Composites [J]. Journal of Inorganic Materials, 2015, 30(8): 855-860. |
Viewed | ||||||
Full text |
|
|||||
Abstract |
|
|||||