Metformin-Incorporated Gelatin/Hydroxyapatite Nanofiber Scaffold for Bone Regeneration.

Tissue Engineering Part A Pub Date : 2022-01-01 Epub Date: 2021-07-05 DOI:10.1089/ten.TEA.2021.0038
Chung-Kai Sun, Pei-Wei Weng, Jenny Zwei-Chieng Chang, Yi-Wen Lin, Fon-Yih Tsuang, Feng-Huei Lin, Tung-Hu Tsai, Jui-Sheng Sun
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引用次数: 10

Abstract

Tissue engineering and regenerative medicine has gradually evolved as a promising therapeutic strategy to the modern health care of aging and diseased population. In this study, we developed a novel nanofibrous scaffold and verified its application in the critical bone defect regeneration. The metformin-incorporated nano-gelatin/hydroxyapatite fibers (NGF) was produced by electrospinning, cross-linked, and then characterized by X-ray powder diffractometer and Fourier-transform infrared spectroscopy. Cytotoxicity, cell adhesion, cell differentiation, and quantitative osteogenic gene and protein expression were analyzed by bone marrow stem cells (BMSCs) from rat. Rat forearm critical bone defect model was performed for the in vivo study. The NGF were characterized by their porous structures with proper interconnectivity without significant cytotoxic effects; the adhesion of BMSCs on the NGF could be enhanced. The osteogenic gene and protein expression were upregulated. Postimplantation, the new regenerated bone in bone defect was well demonstrated in the NGF samples. We demonstrated that the metformin-incorporated NGF greatly improved healing potential on the critical-size bone defect. Although metformin-incorporated NGF had advantageous effectiveness during bone regeneration, further validation is required before it can be applied to clinical applications. Impact statement Bone is the structure that supports the rest of the human body. Critical-size bone defect hinders the regeneration of damaged bone tissues and compromises the mechanical strength of the skeletal system. Characterized by their porous structures with proper interconnectivity, the electrospinning nano-gelatin/hydroxyapatite fibrous scaffold developed in this study can greatly improve the healing potential on the critical-size bone defect. Further validation can validate its potential clinical applications.

二甲双胍-明胶/羟基磷灰石纳米纤维骨再生支架。
组织工程和再生医学已逐渐发展成为一种有前途的治疗策略,以老年和疾病人群的现代医疗保健。在本研究中,我们开发了一种新型纳米纤维支架,并验证了其在关键骨缺损再生中的应用。采用静电纺丝、交联法制备了二甲双胍掺杂纳米明胶/羟基磷灰石纤维(NGF),并用x射线粉末衍射仪和傅里叶变换红外光谱对其进行了表征。利用大鼠骨髓干细胞(BMSCs)对细胞毒性、细胞粘附、细胞分化、成骨基因和成骨蛋白表达进行了定量分析。采用大鼠前臂严重骨缺损模型进行体内研究。NGF具有多孔结构,具有良好的连通性,无明显的细胞毒性作用;可增强骨髓间充质干细胞对NGF的粘附。成骨基因和成骨蛋白表达上调。植骨后,骨缺损的新生骨在NGF样品中表现良好。我们证明二甲双胍结合的NGF极大地提高了临界尺寸骨缺损的愈合潜力。虽然二甲双胍结合的NGF在骨再生中具有优势的有效性,但在应用于临床应用之前还需要进一步的验证。骨骼是支撑人体其他部分的结构。临界尺寸的骨缺损阻碍了受损骨组织的再生,并损害了骨骼系统的机械强度。本研究制备的纳米明胶/羟基磷灰石纤维支架具有多孔结构,具有良好的互连性,可大大提高临界尺寸骨缺损的愈合潜力。进一步的验证可以验证其潜在的临床应用。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
Tissue Engineering Part A
Tissue Engineering Part A CELL & TISSUE ENGINEERING-BIOTECHNOLOGY & APPLIED MICROBIOLOGY
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