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丁香酸包封壳聚糖/甲基纤维素水凝胶的生物相容性:生物特性表征、基于计算机分子建模的成骨效率。

Biocompatibility of Veratric Acid-Encapsulated Chitosan/Methylcellulose Hydrogel: Biological Characterization, Osteogenic Efficiency with In Silico Molecular Modeling.

机构信息

Department of Environmental Science, School of Life Sciences, Periyar University, Salem, 636 011, India.

Zoonosis Research Center, Department of Infection Biology, School of Medicine, Wonkwang University, 54538, Iksan, Republic of Korea.

出版信息

Appl Biochem Biotechnol. 2023 Jul;195(7):4429-4446. doi: 10.1007/s12010-023-04311-5. Epub 2023 Jan 26.

DOI:10.1007/s12010-023-04311-5
PMID:36701091
Abstract

The limitations of graft material, and surgical sites for autografts in bone defects treatment have become a significant challenge in bone tissue engineering. Phytocompounds markedly affect bone metabolism by activating the osteogenic signaling pathways. The present study investigated the biocompatibility of the bio-composite thermo-responsive hydrogels consisting of chitosan (CS), and methylcellulose (MC) encapsulated with veratric acid (VA) as a restorative agent for bone defect treatment. The spectroscopy analyses confirmed the formation of CS/MC hydrogels and VA encapsulated CS/MC hydrogels (CS/MC-VA). Molecular analysis of the CS-specific MC decamer unit with VA complex exhibited a stable integration in the system. Further, Runx2 (runt-related transcription factor 2) was found in the docking mechanism with VA, indicating a high binding affinity towards the functional site of the Runx2 protein. The formulated CS/MC-VA hydrogels exhibited biocompatibility with the mouse mesenchymal stem cells, while VA promoted osteogenic differentiation in the stem cells, which was verified by calcium phosphate deposition through the von Kossa staining. The study results suggest that CS/MC-VA could be a potential therapeutic alternative source for bone regeneration.

摘要

在骨缺损治疗中,移植物材料和自体移植物的手术部位的局限性已成为骨组织工程的重大挑战。植物化合物通过激活成骨信号通路显著影响骨代谢。本研究调查了由壳聚糖 (CS) 和甲基纤维素 (MC) 组成的生物复合材料温敏水凝胶的生物相容性,该水凝胶包封了香草酸 (VA) 作为骨缺损治疗的修复剂。光谱分析证实了 CS/MC 水凝胶和包封 VA 的 CS/MC 水凝胶 (CS/MC-VA) 的形成。与 VA 复合的 CS 特异性 MC 十聚体单元的分子分析表明,在该系统中具有稳定的整合。此外,在与 VA 的对接机制中发现了 Runx2(runt 相关转录因子 2),表明对 Runx2 蛋白的功能位点具有高结合亲和力。所制备的 CS/MC-VA 水凝胶对小鼠间充质干细胞具有生物相容性,而 VA 促进了干细胞中的成骨分化,这通过 von Kossa 染色证实了磷酸钙的沉积。研究结果表明,CS/MC-VA 可能是骨再生的一种有潜力的治疗替代来源。

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2
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Tissue Eng Part B Rev. 2021 Oct;27(5):486-513. doi: 10.1089/ten.TEB.2020.0202. Epub 2020 Dec 8.
3
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4
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5
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Life (Basel). 2023 Apr 5;13(4):954. doi: 10.3390/life13040954.
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