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miR-181a/MSC-Loaded Nano-Hydroxyapatite/Collagen Accelerated Bone Defect Repair in Rats by Targeting Ferroptosis Pathway

机译:miR-181a/MSC 负载纳米羟基磷灰石/胶原蛋白靶向铁死亡通路加速大鼠骨缺损修复

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Background: The reparative regeneration of jawbone defects poses a significant challenge within the field of dentistry. Despite being the gold standard, autogenous bone materials are not without drawbacks, including a heightened risk of postoperative infections. Consequently, the development of innovative materials that can surpass the osteogenic capabilities of autologous bone has emerged as a pivotal area of research. Methods: Mesenchymal stem cells (MSCs), known for their multilineage differentiation potential, were isolated from human umbilical cords and transfected with miR-181a. The osteogenic differentiation of miR-181a/MSC was investigated. Then, physicochemical properties of miR-181a/MSC-loaded nano-hydroxyapatite (nHAC) scaffolds were characterized, and their efficacy and underlying mechanism in rat calvarial defect repair were explored. Results: miR-181a overexpression in MSCs significantly promoted osteogenic differentiation, as evidenced by increased alkaline phosphatase activity and expression of osteogenic markers. The miR-181a/MSC-loaded nHAC scaffolds exhibited favorable bioactivity and accelerated bone tissue repair and collagen secretion in vivo. Mechanistic studies reveal that miR-181a directly targeted the TP53/SLC7A11 pathway, inhibiting ferroptosis and enhancing the osteogenic capacity of MSCs. Conclusions: The study demonstrates that miR-181a/MSC-loaded nHAC scaffolds significantly enhance the repair of bone defects by promoting osteogenic differentiation and inhibiting ferroptosis. These findings provide novel insights into the molecular mechanisms regulating MSC osteogenesis and offer a promising therapeutic strategy for bone defect repair.
机译:背景:颚骨缺损的修复再生在牙科领域构成了重大挑战。尽管是黄金标准,但自体骨材料并非没有缺点,包括术后感染的风险增加。因此,开发能够超越自体骨成骨能力的创新材料已成为一个关键的研究领域。方法: 从人脐带中分离出以其多系分化潜力而闻名的间充质干细胞 (MSCs),并转染 miR-181a。研究 miR-181a/MSC 的成骨分化。然后,表征了 miR-181a/MSC 负载的纳米羟基磷灰石 (nHAC) 支架的物理化学性质,并探讨了它们在大鼠颅骨缺损修复中的功效和潜在机制。结果: MSCs 中 miR-181a 过表达显着促进成骨分化,碱性磷酸酶活性增加和成骨标志物表达证明了这一点。miR-181a/MSC 负载的 nHAC 支架在体内表现出良好的生物活性,并加速了骨组织修复和胶原蛋白分泌。机制研究表明,miR-181a 直接靶向 TP53/SLC7A11 通路,抑制铁死亡并增强 MSC 的成骨能力。结论: 研究表明,miR-181a/MSC 负载的 nHAC 支架通过促进成骨分化和抑制铁死亡,显着增强骨缺损的修复。这些发现为调节 MSC 成骨的分子机制提供了新的见解,并为骨缺损修复提供了一种有前途的治疗策略。

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