设计形状定义的介孔金属纳米酶的简单合成作为过度氧化应激疾病的治疗药物。

IF 9.6 Q1 ENGINEERING, BIOMEDICAL
Biomaterials research Pub Date : 2025-09-05 eCollection Date: 2025-01-01 DOI:10.34133/bmr.0251
Xiongfeng Cao, Kun Chen, Minjun Ji, Xiang Liao, Yanfang Liu
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引用次数: 0

摘要

介孔金属纳米材料(MMNs)以其独特的性能引起了人们对其生物医学研究的兴趣,但由于其球形的优势和形态学对生物活性的影响被忽视,其潜力受到限制,这阻碍了对其形态依赖性酶样活性和生物行为的合理评价及其进一步的生物医学应用。因此,必须找到一种有效和简便的方法来设计和制备具有新颖,明确定义的形态的MMNs。本文以金纳米粒子(Au NPs)为模板核,Pluronic F127为结构导向剂,通过原子层沉积方法制备了3种介孔铂纳米酶,包括球体、棒状和双金字塔拓扑[分别为Au@mesoPt球体、Au@mesoPt棒状和Au@mesoPt双金字塔纳米粒子]。获得的Au@mesoPt NPs可以提高细胞摄取效率,延长血液消除半衰期,有助于注射后癌细胞球体在疾病部位的渗透和积累。Au@mesoPt NPs具有过氧化氢酶样活性,可抑制促炎细胞因子的释放,通过清除活性氧(ROS)明显缓解动脉粥样硬化。由于含有高阶数(Z)元素的金属纳米酶作为放射增敏剂的作用,Au@mesoPt NPs对胰腺癌治疗具有明显的放射增敏作用。在这些形状中,Au@mesoPt双锥体在治疗动脉粥样硬化和胰腺癌方面表现出最好的疗效,可能是由于它们的高宽高比、不规则表面和各向异性,有利于血液流动和细胞摄取。可调谐合成形状定义的MMNs预示着其他领域的应用,包括生物传感器、表面增强拉曼散射、表面等离子体共振、储氢、催化和电疗。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Facile Synthesis of Designer Shape-Defined Mesoporous Metal Nanoenzymes as Therapeutics for Diseases Involving Excessive Oxidative Stress.

Mesoporous metal nanomaterials (MMNs) have gained interest in biomedicine for their unique properties, but their potential is limited by the predominance of spherical shapes and the neglect of morphological effects on biological activity, which hinders the reasonable evaluation of morphology-dependent enzyme-like activities and biological behaviors and its further biomedical applications. It is therefore imperative to find an effective and facile method to design and prepare MMNs with novel, well-defined morphologies. Herein, we fabricated 3 mesoporous platinum nanoenzymes including sphere, rod, and bipyramid topologies [Au@mesoPt sphere, Au@mesoPt rod, and Au@mesoPt bipyramid nanoparticles (NPs), respectively] via a facile atomic layer deposition method using gold NPs (Au NPs) as the templated cores and Pluronic F127 as a structure-directing agent. The obtained Au@mesoPt NPs could enhance cellular uptake efficiency and prolong blood elimination half-lives, which helped more cancer cell spheroid permeation and accumulation at the disease sites post-injection. Au@mesoPt NPs could obviously alleviate atherosclerosis through reactive oxide species (ROS) scavenge due to its catalase-like activity and inhibition of pro-inflammatory cytokine release. Due to the role of metal nanoenzymes containing high-order-number (Z) elements as radiosensitizers, Au@mesoPt NPs have a distinct radiosensitizing on pancreatic cancer treatment. Among the shapes, Au@mesoPt bipyramids showed the best therapeutic efficacy in treating atherosclerosis and pancreatic cancer, likely due to their high aspect ratio, irregular surface, and anisotropy, which favor blood flow and cellular uptake. The tunable synthesis of shape-defined MMNs bodes well for other areas of application, including biosensors, surface-enhanced Raman scattering, surface plasmon resonance, hydrogen storage, catalysis, and electrotherapy.

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