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氧化镁纳米颗粒增强的南瓜衍生纳米结构纤维素支架用于增强骨再生。

Magnesium oxide nanoparticle reinforced pumpkin-derived nanostructured cellulose scaffold for enhanced bone regeneration.

作者信息

Hosseini Seyedeh Fatemeh, Galefi Atena, Hosseini Saadi, Shaabani Alireza, Farrokhi Naser, Jahanfar Mehdi, Nourany Mohammad, Homaeigohar Shahin, Alipour Atefeh, Shahsavarani Hosein

机构信息

Department of Cell and Molecular Biology, Faculty of Life Sciences and Biotechnology, Shahid Beheshti University, Tehran 1983969411, Iran; Laboratory of Regenerative Medicine and Biomedical Innovations, Pasteur Institute of Iran, Tehran 1316943551, Iran; Urology Research Center, Tehran University of Medical Sciences, Tehran, Iran.

Department of Cell and Molecular Biology, Faculty of Life Sciences and Biotechnology, Shahid Beheshti University, Tehran 1983969411, Iran; Laboratory of Regenerative Medicine and Biomedical Innovations, Pasteur Institute of Iran, Tehran 1316943551, Iran.

出版信息

Int J Biol Macromol. 2024 Nov;281(Pt 3):136303. doi: 10.1016/j.ijbiomac.2024.136303. Epub 2024 Oct 5.

DOI:10.1016/j.ijbiomac.2024.136303
PMID:39370065
Abstract

Considering global surge in bone fracture prevalence, limitation in use of traditional healing approaches like bone grafts highlights the need for innovative regenerative strategies. Here, a novel green fabrication approach has reported for reinforcement of physicochemical performances of sustainable bioinspired extracellular matrix (ECM) based on decellularized pumpkin tissue coated with Magnesium oxide nanoparticles (hereafter called DM-Pumpkin) for enhanced bone regeneration. Compared to uncoated scaffold, DM-Pumpkin exhibited significantly improved surface roughness, mechanical stiffness, porosity, hydrophilicity, swelling, and biodegradation rate. Obtained nanoporous structure provides an ideal three-dimensional microenvironment for the attachment, migration and osteo-induction in human adipose-derived mesenchymal stem cells (h- AdMSCs). Calcium deposition and mineralization, alkaline phosphatase activity, and SEM imaging of the cells as well as increased expression of bone-related genes after 21 days incubation confirmed capability of DM-Pumpkin in mimicking the biological properties of bone tissue. The presence of MgONPs had a silencing effect on inflammatory factors and improved wound closure, verified by in vivo studies. Increased expression of collagen type I and osteocalcin in the h- AdMSCs cultured on DM-Pumpkin compared to control further corroborated gained results. Altogether, boosting physicochemical and biological properties of DM-Pumpkin due to surface modification is a promising approach for guided bone regeneration.

摘要

考虑到全球范围内骨折患病率的激增,像骨移植这样的传统愈合方法在使用上的局限性凸显了创新再生策略的必要性。在此,一种新型的绿色制造方法被报道用于增强基于脱细胞南瓜组织并涂覆有氧化镁纳米颗粒(以下称为DM-南瓜)的可持续生物启发细胞外基质(ECM)的物理化学性能,以促进骨再生。与未涂覆的支架相比,DM-南瓜表现出显著改善的表面粗糙度、机械刚度、孔隙率、亲水性、膨胀性和生物降解率。所获得的纳米多孔结构为人类脂肪来源间充质干细胞(h-AdMSCs)的附着、迁移和骨诱导提供了理想的三维微环境。在培养21天后,细胞的钙沉积和矿化、碱性磷酸酶活性、SEM成像以及骨相关基因表达的增加证实了DM-南瓜模拟骨组织生物学特性的能力。体内研究证实,MgONPs的存在对炎症因子有沉默作用并改善了伤口闭合。与对照组相比,在DM-南瓜上培养的h-AdMSCs中I型胶原蛋白和骨钙素表达的增加进一步证实了所得结果。总之,由于表面修饰而增强DM-南瓜的物理化学和生物学特性是引导骨再生的一种有前景的方法。

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