Hydrothermal Magnesium Alloy Extracts Modulate MicroRNA Expression in RAW264.7 Cells: Implications for Bone Remodeling.

IF 5.2 3区 医学 Q1 ENGINEERING, BIOMEDICAL
Viviana Costa, Lavinia Raimondi, Daniele Bellavia, Angela De Luca, Pasquale Guglielmi, Angela Cusanno, Luca Cattini, Lia Pulsatelli, Matteo Pavarini, Roberto Chiesa, Gianluca Giavaresi
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引用次数: 0

Abstract

Magnesium (Mg) alloys, particularly Mg AZ31, have emerged as promising biomaterials for orthopedic applications due to their biodegradability and favorable mechanical characteristics. Among these, the Mg AZ31+SPF alloy, subjected to hydrothermal (HT) treatment, has demonstrated enhanced bioactivity. Our previous research established that this surface modification supports the osteogenic differentiation of human mesenchymal stem cells (hMSCs) by modulating both canonical and non-canonical signaling pathways, including those implicated in osteogenesis, hypoxic response, exosome biogenesis, and lipid metabolism. In the present study, we extended our investigation to assess the effects of Mg AZ31+SPF+HT and Mg AZ31+SPF extracts on murine pre-osteoclasts (RAW 264.7 cells) over 3- and 6-day treatment periods. The primary objectives were to evaluate biocompatibility and to investigate potential impacts on osteoclastogenesis induction and miRNA expression profiles.

Methods: To assess cytocompatibility, metabolic activity, DNA integrity, and morphological alterations in RAW 264.7 cells were evaluated. Osteoclast differentiation was quantified using TRAP staining, alongside the assessment of osteoclastogenic marker expression by qRT-PCR and ELISA. The immunomodulatory properties of the extracts were examined using multiplex BioPlex assays to quantify soluble factors involved in bone healing. Additionally, global miRNA expression profiling was performed using a specialized panel targeting 82 microRNAs implicated in bone remodeling and inflammatory signaling.

Results: Mg AZ31+SPF+HT extract exhibited high biocompatibility, with no observable adverse effects on cell viability. Notably, a significant reduction in the number of TRAP-positive and multinucleated cells was observed relative to the Mg AZ31+SPF group. This effect was corroborated by the downregulation of osteoclast-specific gene expression and decreased MMP9 protein levels. Cytokine profiling indicated that Mg AZ31+SPF+HT extract promoted an earlier release of key cytokines involved in maintaining the balance between bone formation and resorption, suggesting a beneficial role in bone healing. Furthermore, miRNA profiling revealed a distinct regulatory signature in Mg AZ31+SPF+HT-treated cells, with differentially expressed miRNAs associated with inflammation, osteoclast differentiation, apoptosis, bone resorption, hypoxic response, and metabolic processes compared to Mg AZ31+SPF-treated cells.

Conclusions: Collectively, these findings indicate that hydrothermal treatment of Mg AZ31+SPF (resulting in Mg AZ31+SPF+HT) attenuates pre-osteoclast activation by influencing cellular morphology, gene and protein expression, as well as post-transcriptional regulation via modulation of miRNAs. The preliminary identification of miRNAs and the activation of their regulatory networks in pre-osteoclasts exposed to hydrothermally treated Mg alloy are described herein. In the context of orthopedic surgery-where balanced bone remodeling is imperative-our results emphasize the dual significance of promoting bone formation while modulating bone resorption to achieve optimal implant integration and ensure long-term bone health.

水热镁合金提取物调节RAW264.7细胞中的MicroRNA表达:对骨重塑的影响。
镁合金,特别是AZ31镁合金,由于其生物可降解性和良好的力学特性,已成为骨科应用的有前途的生物材料。其中,经水热(HT)处理的Mg AZ31+SPF合金表现出增强的生物活性。我们之前的研究表明,这种表面修饰通过调节典型和非典型信号通路,包括与成骨、缺氧反应、外泌体生物发生和脂质代谢有关的信号通路,支持人间充质干细胞(hMSCs)的成骨分化。在本研究中,我们扩展了我们的研究,以评估Mg AZ31+SPF+HT和Mg AZ31+SPF提取物在3天和6天的治疗期间对小鼠前破骨细胞(RAW 264.7细胞)的影响。主要目的是评估生物相容性,并研究对破骨细胞生成诱导和miRNA表达谱的潜在影响。方法:评估RAW 264.7细胞的细胞相容性、代谢活性、DNA完整性和形态学改变。采用TRAP染色定量测定破骨细胞分化,同时采用qRT-PCR和ELISA检测破骨细胞标志物的表达。提取物的免疫调节特性使用多重BioPlex测定来量化参与骨愈合的可溶性因子。此外,使用专门的小组针对82个与骨重塑和炎症信号有关的microrna进行了全球miRNA表达谱分析。结果:Mg AZ31+SPF+HT提取物具有较高的生物相容性,对细胞活力无明显不良影响。值得注意的是,与Mg AZ31+SPF组相比,trap阳性和多核细胞的数量显著减少。破骨细胞特异性基因表达的下调和MMP9蛋白水平的降低证实了这一效应。细胞因子分析表明,Mg AZ31+SPF+HT提取物促进了参与维持骨形成和骨吸收平衡的关键细胞因子的早期释放,表明其在骨愈合中具有有益作用。此外,miRNA分析显示,与Mg AZ31+SPF+ ht处理的细胞相比,Mg AZ31+SPF+ ht处理的细胞具有明显的调控特征,与炎症、破骨细胞分化、细胞凋亡、骨吸收、缺氧反应和代谢过程相关的miRNA表达差异。综上所述,这些发现表明水热处理Mg AZ31+SPF(导致Mg AZ31+SPF+HT)通过影响细胞形态、基因和蛋白质表达以及通过调节mirna的转录后调节来减弱破骨细胞前活化。本文描述了暴露于水热处理镁合金的破骨前细胞中mirna的初步鉴定及其调控网络的激活。在骨科手术的背景下,平衡骨重塑是必不可少的,我们的研究结果强调了促进骨形成和调节骨吸收的双重意义,以实现最佳的种植体整合和确保长期的骨骼健康。
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来源期刊
Journal of Functional Biomaterials
Journal of Functional Biomaterials Engineering-Biomedical Engineering
CiteScore
4.60
自引率
4.20%
发文量
226
审稿时长
11 weeks
期刊介绍: Journal of Functional Biomaterials (JFB, ISSN 2079-4983) is an international and interdisciplinary scientific journal that publishes regular research papers (articles), reviews and short communications about applications of materials for biomedical use. JFB covers subjects from chemistry, pharmacy, biology, physics over to engineering. The journal focuses on the preparation, performance and use of functional biomaterials in biomedical devices and their behaviour in physiological environments. Our aim is to encourage scientists to publish their results in as much detail as possible. Therefore, there is no restriction on the length of the papers. The full experimental details must be provided so that the results can be reproduced. Several topical special issues will be published. Scope: adhesion, adsorption, biocompatibility, biohybrid materials, bio-inert materials, biomaterials, biomedical devices, biomimetic materials, bone repair, cardiovascular devices, ceramics, composite materials, dental implants, dental materials, drug delivery systems, functional biopolymers, glasses, hyper branched polymers, molecularly imprinted polymers (MIPs), nanomedicine, nanoparticles, nanotechnology, natural materials, self-assembly smart materials, stimuli responsive materials, surface modification, tissue devices, tissue engineering, tissue-derived materials, urological devices.
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