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在用于军事医学的压电水凝胶组织工程支架中,将免疫调节、血管生成和成骨能力结合在一起。

The marriage of immunomodulatory, angiogenic, and osteogenic capabilities in a piezoelectric hydrogel tissue engineering scaffold for military medicine.

机构信息

Key Laboratory of Imaging Diagnosis and Minimally Invasive Intervention Research, the Fifth Affiliated Hospital of Wenzhou Medical University, Lishui, 323000, Zhejiang, China.

Oujiang Laboratory (Zhejiang Lab for Regenerative Medicine, Vision and Brain Health), School of Pharmaceutical Science, Wenzhou Medical University, Wenzhou, 325000, Zhejiang, China.

出版信息

Mil Med Res. 2023 Jul 31;10(1):35. doi: 10.1186/s40779-023-00469-5.

Abstract

BACKGROUND

Most bone-related injuries to grassroots troops are caused by training or accidental injuries. To establish preventive measures to reduce all kinds of trauma and improve the combat effectiveness of grassroots troops, it is imperative to develop new strategies and scaffolds to promote bone regeneration.

METHODS

In this study, a porous piezoelectric hydrogel bone scaffold was fabricated by incorporating polydopamine (PDA)-modified ceramic hydroxyapatite (PDA-hydroxyapatite, PHA) and PDA-modified barium titanate (PDA-BaTiO, PBT) nanoparticles into a chitosan/gelatin (Cs/Gel) matrix. The physical and chemical properties of the Cs/Gel/PHA scaffold with 0-10 wt% PBT were analyzed. Cell and animal experiments were performed to characterize the immunomodulatory, angiogenic, and osteogenic capabilities of the piezoelectric hydrogel scaffold in vitro and in vivo.

RESULTS

The incorporation of BaTiO into the scaffold improved its mechanical properties and increased self-generated electricity. Due to their endogenous piezoelectric stimulation and bioactive constituents, the as-prepared Cs/Gel/PHA/PBT hydrogels exhibited cytocompatibility as well as immunomodulatory, angiogenic, and osteogenic capabilities; they not only effectively induced macrophage polarization to M2 phenotype but also promoted the migration, tube formation, and angiogenic differentiation of human umbilical vein endothelial cells (HUVECs) and facilitated the migration, osteo-differentiation, and extracellular matrix (ECM) mineralization of MC3T3-E1 cells. The in vivo evaluations showed that these piezoelectric hydrogels with versatile capabilities significantly facilitated new bone formation in a rat large-sized cranial injury model. The underlying molecular mechanism can be partly attributed to the immunomodulation of the Cs/Gel/PHA/PBT hydrogels as shown via transcriptome sequencing analysis, and the PI3K/Akt signaling axis plays an important role in regulating macrophage M2 polarization.

CONCLUSION

The piezoelectric Cs/Gel/PHA/PBT hydrogels developed here with favorable immunomodulation, angiogenesis, and osteogenesis functions may be used as a substitute in periosteum injuries, thereby offering the novel strategy of applying piezoelectric stimulation in bone tissue engineering for the enhancement of combat effectiveness in grassroots troops.

摘要

背景

基层部队的大多数与骨骼相关的损伤是由训练或意外伤造成的。为了制定预防措施以减少各种创伤并提高基层部队的战斗力,开发新的策略和支架以促进骨骼再生势在必行。

方法

本研究通过将聚多巴胺(PDA)修饰的陶瓷羟基磷灰石(PDA-羟基磷灰石,PHA)和 PDA 修饰的钛酸钡(PDA-BaTiO,PBT)纳米颗粒掺入壳聚糖/明胶(Cs/Gel)基质中,制备了一种多孔压电水凝胶骨支架。分析了 Cs/Gel/PHA 支架中 0-10wt% PBT 的物理化学性质。通过细胞和动物实验,对体外和体内压电水凝胶支架的免疫调节、血管生成和成骨能力进行了表征。

结果

BaTiO 的掺入提高了支架的机械性能并增加了自发电。由于其内在的压电刺激和生物活性成分,所制备的 Cs/Gel/PHA/PBT 水凝胶表现出细胞相容性以及免疫调节、血管生成和成骨能力;它们不仅有效诱导巨噬细胞向 M2 表型极化,还促进人脐静脉内皮细胞(HUVECs)的迁移、管形成和血管生成分化,并促进 MC3T3-E1 细胞的迁移、成骨分化和细胞外基质(ECM)矿化。体内评价表明,这些具有多功能的压电水凝胶显著促进了大鼠大尺寸颅骨损伤模型中的新骨形成。其潜在的分子机制部分归因于 Cs/Gel/PHA/PBT 水凝胶的免疫调节,通过转录组测序分析可以看出,PI3K/Akt 信号通路在调节巨噬细胞 M2 极化中起着重要作用。

结论

具有良好免疫调节、血管生成和成骨功能的压电 Cs/Gel/PHA/PBT 水凝胶可作为骨膜损伤的替代品,为在基层部队骨组织工程中应用压电刺激提供了新策略,以提高战斗力。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/ca12/10388535/eab32341fc74/40779_2023_469_Fig1_HTML.jpg

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