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受生物矿化启发的3D打印生物活性玻璃纳米复合支架通过重塑微环境来协调糖尿病性骨再生。

Biomineralization inspired 3D printed bioactive glass nanocomposite scaffolds orchestrate diabetic bone regeneration by remodeling micromilieu.

作者信息

Xu Zeqian, Qi Xuanyu, Bao Minyue, Zhou Tian, Shi Junfeng, Xu Zhiyan, Zhou Mingliang, Boccaccini Aldo R, Zheng Kai, Jiang Xinquan

机构信息

Department of Prosthodontics, Shanghai Ninth People's Hospital, Shanghai Jiao Tong University School of Medicine, No. 639 Zhizaoju Road, Shanghai, 200011, People's Republic of China.

College of Stomatology, Shanghai Jiao Tong University, No. 639 Zhizaoju Road, Shanghai, 200011, People's Republic of China.

出版信息

Bioact Mater. 2023 Feb 8;25:239-255. doi: 10.1016/j.bioactmat.2023.01.024. eCollection 2023 Jul.

Abstract

Type II diabetes mellitus (TIIDM) remains a challenging clinical issue for both dentists and orthopedists. By virtue of persistent hyperglycemia and altered host metabolism, the pathologic diabetic micromilieu with chronic inflammation, advanced glycation end products accumulation, and attenuated biomineralization severely impairs bone regeneration efficiency. Aiming to "remodel" the pathologic diabetic micromilieu, we 3D-printed bioscaffolds composed of Sr-containing mesoporous bioactive glass nanoparticles (Sr-MBGNs) and gelatin methacrylate (GelMA). Sr-MBGNs act as a biomineralization precursor embedded in the GelMA-simulated extracellular matrix and release Sr, Ca, and Si ions enhancing osteogenic, angiogenic, and immunomodulatory properties. In addition to angiogenic and anti-inflammatory outcomes, this innovative design reveals that the nanocomposites can modulate extracellular matrix reconstruction and simulate biomineralization by activating lysyl oxidase to form healthy enzymatic crosslinked collagen, promoting cell focal adhesion, modulating osteoblast differentiation, and boosting the release of OCN, the noncollagenous proteins (intrafibrillar mineralization dependent), and thus orchestrating osteogenesis through the Kindlin-2/PTH1R/OCN axis. This 3D-printed bioscaffold provides a multifunctional biomineralization-inspired system that remodels the "barren" diabetic microenvironment and sheds light on the new bone regeneration approaches for TIIDM.

摘要

2型糖尿病(TIIDM)对于牙医和骨科医生来说仍然是一个具有挑战性的临床问题。由于持续的高血糖和宿主代谢改变,具有慢性炎症、晚期糖基化终产物积累和生物矿化减弱的病理性糖尿病微环境严重损害了骨再生效率。为了“重塑”病理性糖尿病微环境,我们3D打印了由含锶介孔生物活性玻璃纳米颗粒(Sr-MBGNs)和甲基丙烯酸明胶(GelMA)组成的生物支架。Sr-MBGNs作为嵌入GelMA模拟细胞外基质中的生物矿化前体,释放锶、钙和硅离子,增强成骨、血管生成和免疫调节特性。除了血管生成和抗炎结果外,这种创新设计还表明,纳米复合材料可以通过激活赖氨酰氧化酶来调节细胞外基质重建并模拟生物矿化,以形成健康的酶交联胶原蛋白,促进细胞黏着斑,调节成骨细胞分化,并促进非胶原蛋白(依赖于纤维内矿化)骨钙素(OCN)的释放,从而通过Kindlin-2/PTH1R/OCN轴协调成骨作用。这种3D打印生物支架提供了一种受多功能生物矿化启发的系统,可重塑“贫瘠”的糖尿病微环境,并为TIIDM的新骨再生方法提供思路。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/04e3/9929491/ff50038bc6bc/ga1.jpg

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