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磷酸钆纳米束的表面生物功能化以促进成骨/软骨分化。

Surface Biofunctionalization of Gadolinium Phosphate Nanobunches for Boosting Osteogenesis/Chondrogenesis Differentiation.

机构信息

School of Chemical Engineering, Changchun University of Technology, Changchun 130012, China.

School of Advanced Institute of Materials Science, Changchun University of Technology, Changchun 130012, China.

出版信息

Int J Mol Sci. 2023 Jan 19;24(3):2032. doi: 10.3390/ijms24032032.

Abstract

In order to achieve smart biomedical micro/nanomaterials, promote interaction with biomolecules, improve osteogenic/chondrogenic differentiation, exhibit better dispersion in bone implants and ultimately maximize functionality, we innovatively and successfully designed and synthesized polymer PBLG-modified GdPO·HO nanobunches by hydroxylation, silylation and glutamylation processes. The effects of different feeding ratios on the surface coating of GdPO·HO with Si-OH, the grafting γ-aminopropyltriethoxysilane (APS) and the in situ ring-opening polymerization reaction of poly(g-benzyl-L-glutamate) (PBLG) were investigated, and the physical and chemical properties were characterized in detail. When GdPO·HO@SiO-APS:NCA = 4:1, the PBLG-g-GdPO·HO grafting rate was 5.93%, with good stability and dispersion in degradable polymeric materials. However, the MRI imaging signal was sequentially weakened as the modification process proceeded. Despite this, the biological effects had surprising findings. All the modifiers at appropriate concentrations were biocompatible and biologically active and the biomacromolecules of COL I and COL II in particular were expressed at least 3 times higher in GdPO·HO@SiO compared to the PLGA. This indicates that the appropriate surface modification and functionalization of gadolinium-containing micro/nanomaterials can promote interaction with cells and encourage bone regeneration by regulating biomacromolecules and can be used in the field of biomedical materials.

摘要

为了实现智能生物医学微/纳材料,促进与生物分子的相互作用,提高成骨/软骨分化,在骨植入物中表现出更好的分散性,并最终最大限度地发挥功能,我们创新性地成功设计并合成了聚合物 PBLG 修饰的 GdPO·HO 纳米束,通过羟化、硅烷化和谷氨酰化过程。研究了不同进料比对 GdPO·HO 表面 Si-OH 涂层、接枝 γ-氨丙基三乙氧基硅烷(APS)和聚(γ-苄基-L-谷氨酸)(PBLG)的原位开环聚合反应的影响,并详细表征了其物理化学性质。当 GdPO·HO@SiO-APS:NCA = 4:1 时,PBLG-g-GdPO·HO 的接枝率为 5.93%,在可降解聚合物材料中具有良好的稳定性和分散性。然而,随着修饰过程的进行,MRI 成像信号依次减弱。尽管如此,生物效应却有惊人的发现。所有适当浓度的修饰剂均具有生物相容性和生物活性,特别是 COL I 和 COL II 等生物大分子在 GdPO·HO@SiO 中的表达至少是 PLGA 的 3 倍。这表明,适当的表面修饰和功能化含钆的微/纳米材料可以通过调节生物大分子促进与细胞的相互作用并促进骨再生,可用于生物医学材料领域。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/98f2/9917229/b515ca2335b2/ijms-24-02032-sch001.jpg

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