Naringin-inlaid silk fibroin/hydroxyapatite scaffold enhances human umbilical cord-derived mesenchymal stem cell-based bone regeneration

被引:55
作者
Zhao, Zhi-Hu [1 ]
Ma, Xin-Long [1 ]
Zhao, Bin [1 ]
Tian, Peng [1 ]
Ma, Jian-Xiong [2 ]
Kang, Jia-Yu [3 ]
Zhang, Yang [2 ]
Guo, Yue [2 ]
Sun, Lei [2 ]
机构
[1] Tianjin Hosp, Dept Orthopaed, Tianjin 300000, Peoples R China
[2] Tianjin Inst Orthoped Tradit Chinese & Western Me, Tianjin, Peoples R China
[3] Jinhua Municipal Cent Hosp, Dept Orthoped, Jinhua, Zhejiang, Peoples R China
基金
中国国家自然科学基金;
关键词
bone defect; hydroxyapatite; Naringin; silk fibroin; MARROW STROMAL CELLS; OSTEOGENIC DIFFERENTIATION; COMPOSITE SCAFFOLDS; SIGNALING PATHWAY; EXPRESSION; TISSUE; HYDROXYAPATITE; ANGIOGENESIS; ACTIVATION; APOPTOSIS;
D O I
10.1111/cpr.13043
中图分类号
Q2 [细胞生物学];
学科分类号
071013 [干细胞生物学];
摘要
Objectives Large bone defects are a common, debilitating clinical condition that have substantial global health and economic burden. Bone tissue engineering technology has become one of the most promising approaches for regenerating defective bones. In this study, we fabricated a naringin-inlaid composite silk fibroin/hydroxyapatite (NG/SF/HAp) scaffold to repair bone defects. Materials and Methods The salt-leaching technology was used to fabricate the NG/SF/HAp scaffold. The cytocompatibility of the NG/SF/HAp scaffold was assessed using scanning electron microscopy, live/dead cell staining and phalloidin staining. The osteogenic and angiogenic properties were assessed in vitro and in vivo. Results The porous NG/SF/HAp scaffold had a well-designed biomimetic porous structure with osteoinductive and angiogenic activities. A gene microarray identified 854 differentially expressed genes between human umbilical cord-derived mesenchymal stem cells (hUCMSCs) cultured on SF-nHAp scaffolds and cells cultured on NG/SF/HAp scaffolds. The underlying osteoblastic mechanism was investigated using hUCMSCs in vitro. Naringin facilitated hUCMSC ingrowth into the SF/HAp scaffold and promoted osteogenic differentiation. The osteogenic and angiogenic capabilities of cells cultured in the NG/SF/HAp scaffold were superior to those of cells cultured in the SF/HAp scaffold. Conclusions The data indicate the potential of the SF/HAp composite scaffold incorporating naringin for bone regeneration.
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页数:17
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共 53 条
[1]
Engineered Bone Tissue with Naturally-Derived Small Molecules [J].
Awale, Guleid ;
Wong, Edgar ;
Rajpura, Komal ;
Lo, Kevin W. -H. .
CURRENT PHARMACEUTICAL DESIGN, 2017, 23 (24) :3585-3594
[2]
Preclinical Evidence for the Pharmacological Actions of Naringin: A Review [J].
Bharti, Saurabh ;
Rani, Neha ;
Krishnamurthy, Bhaskar ;
Arya, Dharamvir Singh .
PLANTA MEDICA, 2014, 80 (06) :437-451
[3]
Nucleation and growth of mineralized bone matrix on silk-hydroxyapatite composite scaffolds [J].
Bhumiratana, Sarindr ;
Grayson, Warren L. ;
Castaneda, Andrea ;
Rockwood, Danielle N. ;
Gil, Eun S. ;
Kaplan, David L. ;
Vunjak-Novakovic, Gordana .
BIOMATERIALS, 2011, 32 (11) :2812-2820
[4]
Silk fibroin membrane used for guided bone tissue regeneration [J].
Cai, Yurong ;
Guo, Junmao ;
Chen, Cen ;
Yao, Chenxue ;
Chung, Sung-Min ;
Yao, Juming ;
Lee, In-Seop ;
Kong, Xiangdong .
MATERIALS SCIENCE AND ENGINEERING C-MATERIALS FOR BIOLOGICAL APPLICATIONS, 2017, 70 :148-154
[5]
Osteogenic potential of poly(ethylene glycol)-amorphous calcium phosphate composites on human mesenchymal stem cells [J].
Chahal, Aman S. ;
Schweikle, Manuel ;
Lian, Aina-Mari ;
Reseland, Janne E. ;
Haugen, Havard J. ;
Tiainen, Hanna .
JOURNAL OF TISSUE ENGINEERING, 2020, 11
[6]
Rat bone marrow stromal cells-seeded porous gelatin/tricalcium phosphate/oligomeric proanthocyanidins composite scaffold for bone repair [J].
Chen, Kuo-Yu ;
Chung, Chia-Mei ;
Chen, Yueh-Sheng ;
Bau, Da-Tian ;
Yao, Chun-Hsu .
JOURNAL OF TISSUE ENGINEERING AND REGENERATIVE MEDICINE, 2013, 7 (09) :708-719
[7]
Porous Particle-Reinforced Bioactive Gelatin Scaffold for Large Segmental Bone Defect Repairing [J].
Cui, Yang ;
Zhu, Tengjiao ;
Li, Ailing ;
Liu, Bingchuan ;
Cui, Zhiyong ;
Qiao, Yan ;
Tian, Yun ;
Qiu, Dong .
ACS APPLIED MATERIALS & INTERFACES, 2018, 10 (08) :6956-6964
[8]
Bone regeneration: current concepts and future directions [J].
Dimitriou, Rozalia ;
Jones, Elena ;
McGonagle, Dennis ;
Giannoudis, Peter V. .
BMC MEDICINE, 2011, 9
[9]
Minimal criteria for defining multipotent mesenchymal stromal cells. The International Society for Cellular Therapy position statement [J].
Dominici, M. ;
Le Blanc, K. ;
Mueller, I. ;
Slaper-Cortenbach, I. ;
Marini, F. C. ;
Krause, D. S. ;
Deans, R. J. ;
Keating, A. ;
Prockop, D. J. ;
Horwitz, E. M. .
CYTOTHERAPY, 2006, 8 (04) :315-317
[10]
Regenerating bone with bioactive glass scaffolds: A review of in vivo studies in bone defect models [J].
El-Rashidy, Aiah A. ;
Roether, Judith A. ;
Harhaus, Leila ;
Kneser, Ulrich ;
Boccaccini, Aldo R. .
ACTA BIOMATERIALIA, 2017, 62 :1-28