Biofunctional supramolecular injectable hydrogel with spongy-like metal-organic coordination for effective repair of critical-sized calvarial defects

IF 10.7 1区 医学 Q1 PHARMACOLOGY & PHARMACY
Yingqi Chen , Zuocheng Qiu , Xueling Hu , Tiehua Wang , Guoqing Li , Ziling Tang , Chongzhou Fang , Weibei Sheng , Jin Zhao , Fei Yu , Jian Weng , Anjaneyulu Udduttula , Geetha Manivasagam , Hui Zeng
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Abstract

In clinical settings, regenerating critical-sized calvarial bone defects presents substantial problems owing to the intricacy of surgical methods, restricted bone growth medications, and a scarcity of commercial bone grafts. To treat this life-threatening issue, improved biofunctional grafts capable of properly healing critical-sized bone defects are required. In this study, we effectively created anti-fracture hydrogel systems using spongy-like metal-organic (magnesium-phosphate) coordinated chitosan-modified injectable hydrogels (CPMg) loaded with a bioinspired neobavaisoflavone (NBF) component. The CPMg-NBF hydrogels showed outstanding anti-fracture capabilities during compression testing and retained exceptional mechanical stability even after 28 d of immersion in phosphate-buffered saline. They also demonstrated prolonged and stable release profiles of Mg2+ and NBF. Importantly, CPMg-NBF hydrogels revealed robust biphasic mineralization and were non-toxic to MC3T3-E1 cells. To better understand the underlying mechanism of Mg2+ and NBF component, as well as their synergistic effect on osteogenesis, we investigated the expression of key osteogenic proteins in the p38 MAPK and NOTCH pathways. Our results showed that CPMg-NBF hydrogels greatly increased the expression of osteogenic proteins (Runx2, OCN, OPN, BMPS and ALP). In vivo experiments showed that the implantation of CPMg-NBF hydrogels resulted in a significant increase in new bone growth within critical-sized calvarial defects. Based on these findings, we expect that the CPMg-NBF supramolecular hydrogel has tremendous promise for use as a therapeutic biomaterial for treating critical-sized calvarial defects.

Abstract Image

具有海绵状金属-有机配位的生物功能超分子可注射水凝胶用于修复临界尺寸颅骨缺损
在临床环境中,由于手术方法的复杂性、限制性骨生长药物和商业骨移植物的稀缺性,再生临界尺寸的颅骨骨缺损提出了实质性的问题。为了治疗这一危及生命的问题,需要改进的生物功能移植物,能够正确愈合临界大小的骨缺损。在这项研究中,我们使用海绵状金属有机(磷酸镁)配位壳聚糖修饰的可注射水凝胶(CPMg)有效地创建了抗断裂水凝胶体系,CPMg负载生物诱导的新巴瓦异黄酮(NBF)成分。CPMg-NBF水凝胶在压缩测试中表现出出色的抗断裂能力,即使在磷酸盐缓冲盐水中浸泡28天后,也保持了出色的机械稳定性。他们还展示了Mg2+和NBF的持久和稳定的释放特征。重要的是,CPMg-NBF水凝胶显示出强大的双相矿化,并且对MC3T3-E1细胞无毒。为了更好地了解Mg2+和NBF成分的潜在机制,以及它们对成骨的协同作用,我们研究了p38 MAPK和NOTCH通路中关键成骨蛋白的表达。结果显示,CPMg-NBF水凝胶可显著提高成骨蛋白(Runx2、OCN、OPN、BMPS和ALP)的表达。体内实验表明,植入CPMg-NBF水凝胶可显著增加临界尺寸颅骨缺损内的新骨生长。基于这些发现,我们期望CPMg-NBF超分子水凝胶作为治疗临界尺寸颅骨缺损的治疗性生物材料具有巨大的前景。
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来源期刊
Asian Journal of Pharmaceutical Sciences
Asian Journal of Pharmaceutical Sciences Pharmacology, Toxicology and Pharmaceutics-Pharmaceutical Science
CiteScore
18.30
自引率
2.90%
发文量
11
审稿时长
14 days
期刊介绍: The Asian Journal of Pharmaceutical Sciences (AJPS) serves as the official journal of the Asian Federation for Pharmaceutical Sciences (AFPS). Recognized by the Science Citation Index Expanded (SCIE), AJPS offers a platform for the reporting of advancements, production methodologies, technologies, initiatives, and the practical application of scientific knowledge in the field of pharmaceutics. The journal covers a wide range of topics including but not limited to controlled drug release systems, drug targeting, physical pharmacy, pharmacodynamics, pharmacokinetics, pharmacogenomics, biopharmaceutics, drug and prodrug design, pharmaceutical analysis, drug stability, quality control, pharmaceutical engineering, and material sciences.
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