揭示钙在介孔生物活性玻璃纳米颗粒成骨行为中的作用。

IF 9.4 1区 医学 Q1 ENGINEERING, BIOMEDICAL
José C. García-Perdiguero , Natividad Gómez-Cerezo , Miguel Gisbert-Garzarán , Miguel Manzano , María Vallet-Regí
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引用次数: 0

摘要

生物活性材料的使用已成为规避骨相关疾病的一种有前途的策略。由于其化学成分,含钙生物活性玻璃,包括介孔生物活性玻璃纳米颗粒(nMBG),长期以来一直表现出其骨再生特性。本文合成了Si/Ca比在10% ~ 40%之间变化的SiO₂-CaO nMBG,探讨了Ca在该材料成骨性能中的作用。我们通过TEM, FTIR,吸附氮和固态核磁共振对样品进行了深入的物理化学和生物学评估,揭示了钙的增加削弱了二氧化硅网络,从而削弱了成骨性能。此外,我们还评估了人血清中的蛋白冠,根据Si/Ca比和孵育时间获得了不同的蛋白质模式。细胞研究表明,只有一定量的钙才能上调成骨分化,尽管超过该浓度并不会改善效果。最后,所有含钙样品均促进了生物流体中磷酸钙矿化,而Si/Ca比值较高的样品显著增强了hMSC和hOB矿化。钙也可以调节hMSC基因的表达,含有高达20%钙的样品上调OC和RUNX2。此外,nMBG表现出免疫调节特性,诱导M2修复表型的转变。总的来说,这项全面的研究强调了钙在成骨反应中的关键作用,表明钙的数量本身并不能超过纳米MBG的结构和组成质量的重要性。意义声明:由于我们社会的老龄化加剧,骨相关疾病正在成为一个主要的社会经济问题。因此,基于硅、钙和磷的生物活性材料由于这些元素的成骨特性已被使用多年。在过去的几年里,这些材料作为纳米粒子的制备增加了它们的应用范围。从这个意义上说,我们工作的新颖性依赖于对那些基于硅和钙的介孔生物活性玻璃纳米粒子进行深入的物理化学和生物学评价,这是迄今为止尚未开发的。与钙相对于硅的原子百分比范围的建立相结合,上调成骨分化,尽管超过该浓度并没有提供改善的效果。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Unraveling the role of calcium in the osteogenic behavior of mesoporous bioactive glass nanoparticles

Unraveling the role of calcium in the osteogenic behavior of mesoporous bioactive glass nanoparticles
The use of bioactive materials has emerged as a promising strategy to circumvent bone-related diseases. Because of their chemical composition, calcium-containing bioactive glasses, including mesoporous bioactive glass nanoparticles (nMBG), have long demonstrated their bone regeneration features. In this work, SiO₂-CaO nMBG were synthesized varying Si/Ca ratio from 10 % to 40 % to explore the role of Ca in the osteogenic properties of such materials. We have performed an in-depth physicochemical and biological evaluation of samples by TEM, FTIR, adsorption nitrogen and solid state NMR, revealing that increasing calcium weakens the silica network and consequently, the osteogenic properties. In addition, we have evaluated the protein corona in human serum, obtaining varying protein patterns depending on the Si/Ca ratio and the incubation time. The cellular studies have shown that only certain amounts of calcium up-regulate the osteogenic differentiation, although exceeding such concentrations does not provide improved effects. Finally, All Ca-containing samples promoted calcium phosphate mineralization in biological fluids, while those with higher Si/Ca ratios enhanced significantly hMSC and hOB mineralization. Calcium also modulated hMSC gene expression, with samples containing up to 20 % calcium up-regulating OC and RUNX2. Furthermore, nMBG exhibited immunomodulatory properties, inducing a shift toward the M2 reparative phenotype. Overall, this comprehensive study highlights the crucial role of calcium in osteogenic responses, demonstrating that calcium quantity alone does not surpass the importance of structural and compositional quality in nanosized MBG.

Statement of Significance

Bone-related diseases are becoming a major socioeconomic issue owing to the increased aging of our society. Therefore, bioactive materials based on silicon, calcium and phosphorus have been used for years due to the osteogenic properties of these elements. In the last few years, the preparation of these materials as nanoparticles has increased their range of applications. In this sense, the novelty of our work relies on the in-depth physicochemical and biological evaluation of those mesoporous bioactive glass nanoparticles based on silicon and calcium, which remained unexplored so far. Couple with the establishment of the range of atomic percentage of calcium with respect to silicon that up-regulate the osteogenic differentiation, although exceeding such concentrations does not provide improved effects.
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来源期刊
Acta Biomaterialia
Acta Biomaterialia 工程技术-材料科学:生物材料
CiteScore
16.80
自引率
3.10%
发文量
776
审稿时长
30 days
期刊介绍: Acta Biomaterialia is a monthly peer-reviewed scientific journal published by Elsevier. The journal was established in January 2005. The editor-in-chief is W.R. Wagner (University of Pittsburgh). The journal covers research in biomaterials science, including the interrelationship of biomaterial structure and function from macroscale to nanoscale. Topical coverage includes biomedical and biocompatible materials.
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