Microneedles Loaded with Nitric-Oxide Driven Nanomotors Improve Force-Induced Efferocytosis Impairment and Sterile Inflammation by Revitalizing Macrophage Energy Metabolism

IF 16 1区 材料科学 Q1 CHEMISTRY, MULTIDISCIPLINARY ACS Nano Pub Date : 2025-03-02 DOI:10.1021/acsnano.5c01877
Hao Tan, Shan Wang, Xinyi He, Guoyin Yang, Ye Zhu, Sihan Yang, Shengnan Yan, Chu Gong, Wenya Bai, Yun Hu, Jinlin Song, Leilei Zheng
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Abstract

Mechanical force initiates sterile inflammation, a process implicated in diverse physiological and pathological processes. The timely clearance of apoptotic cells by macrophages via efferocytosis is crucial for the proper resolution of sterile inflammation and for averting excessive tissue damage. Despite this, the specific role and underlying mechanisms of mechanical force on macrophage efferocytosis remain obscure. By integrating bioinformatics and metabolomics analyses, we uncovered how mechanical force disrupts the “arginine metabolism─TCA cycle─mitochondrial function” metabolic cascade, thereby impairing macrophage efferocytosis and intensifying sterile inflammation. Notably, we discovered that elevating l-arginine levels can ameliorate these crises by restoring energy metabolism. Leveraging this insight, we engineered a microneedle drug delivery system loaded with nitric-oxide driven nanomotors (MSN-LA@MNs) for targeted delivery of l-arginine. The active component, MSN-LA, exploits the heightened expression of inducible nitric oxide synthase (iNOS) in force-loaded tissues as a chemoattractant, harnessing NO generated from iNOS-catalyzed l-arginine for autonomous propulsion. In a force-induced rat orthodontic tooth movement (OTM) model, we confirmed that MSN-LA@MNs enhance macrophage efferocytosis and, under iNOS guidance, dynamically modulate sterile inflammation levels in OTM, thus facilitating the OTM process. Collectively, our findings elucidate previously unclear mechanistic links between force, macrophage efferocytosis, and sterile inflammation from a metabolic vantage point, offering a promising targeted strategy for modulating force-related biological processes such as OTM.

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装载一氧化氮驱动纳米马达的微针通过振兴巨噬细胞的能量代谢改善力诱导的吞噬功能障碍和无菌性炎症
机械力引发无菌炎症,这是一个涉及多种生理和病理过程的过程。巨噬细胞通过efferocytosis及时清除凋亡细胞对于无菌性炎症的正确解决和避免过度的组织损伤至关重要。尽管如此,机械力在巨噬细胞efferocytosis中的具体作用和潜在机制尚不清楚。通过整合生物信息学和代谢组学分析,我们揭示了机械力如何破坏“精氨酸代谢─TCA循环─线粒体功能”代谢级联,从而损害巨噬细胞efferocytosis并加剧无菌性炎症。值得注意的是,我们发现提高l-精氨酸水平可以通过恢复能量代谢来改善这些危机。利用这一见解,我们设计了一种微针药物递送系统,该系统装载了一氧化氮驱动的纳米马达(MSN-LA@MNs),用于靶向递送l-精氨酸。活性成分MSN-LA利用诱导型一氧化氮合酶(iNOS)在受力组织中的高表达作为化学引诱剂,利用iNOS催化的l-精氨酸产生的NO进行自主推进。在力诱导大鼠正畸牙齿运动(OTM)模型中,我们证实MSN-LA@MNs增强巨噬细胞的efferocytosis,并在iNOS的引导下动态调节OTM中的无菌炎症水平,从而促进OTM过程。总的来说,我们的研究结果从代谢的角度阐明了先前不清楚的力、巨噬细胞efferocytosis和无菌炎症之间的机制联系,为调节力相关的生物过程(如OTM)提供了有希望的靶向策略。
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来源期刊
ACS Nano
ACS Nano 工程技术-材料科学:综合
CiteScore
26.00
自引率
4.10%
发文量
1627
审稿时长
1.7 months
期刊介绍: ACS Nano, published monthly, serves as an international forum for comprehensive articles on nanoscience and nanotechnology research at the intersections of chemistry, biology, materials science, physics, and engineering. The journal fosters communication among scientists in these communities, facilitating collaboration, new research opportunities, and advancements through discoveries. ACS Nano covers synthesis, assembly, characterization, theory, and simulation of nanostructures, nanobiotechnology, nanofabrication, methods and tools for nanoscience and nanotechnology, and self- and directed-assembly. Alongside original research articles, it offers thorough reviews, perspectives on cutting-edge research, and discussions envisioning the future of nanoscience and nanotechnology.
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