用于增强光声成像的纳米银结构工程。

IF 4.6 3区 材料科学 Q2 CHEMISTRY, MULTIDISCIPLINARY
Rui Zhang, Manuel Dias, Yanchen Li, Stephan Rütten, Fabian Kiessling, Twan Lammers and Roger M. Pallares
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引用次数: 0

摘要

光声成像(PA)是一种诊断工具,在临床(前)环境中被广泛探索,因为它结合了光学和超声成像的优势,导致高对比度分辨率和深度组织穿透。虽然PA成像可以直接显示一些内源性分子(例如脱氧和氧合血红蛋白),但其大多数应用需要外部探针的管理,包括有机染料和无机纳米颗粒。尽管历史上一直用于抗菌和伤口愈合应用,但银纳米颗粒(AgNPs)在PA成像方面具有明显的优点,包括可调谐的光学特性、高质量的局部表面等离子体(LSP)共振、强光热转换和光稳定性。在这项研究中,我们探索了基于银纳米核(具有不同的形态和尺寸)和聚合物外壳的新型PA成像探针,并确定了提供更好的生物相容性,稳定性和探针性能的结构特征。值得注意的是,核的大小和形态强烈影响银探针的PA信号。例如,在测试的不同颗粒中,片状AgNPs产生的信号高达3倍,因为它们的光学性质,特别是LSP波段和消光系数,更适合于PA成像。即使纳米结构表现出明显的光学特性不足,例如,在球形AgNPs的情况下,LSP波段以光谱的蓝色区域为中心,通过操纵核心尺寸仍然可以获得强的PA信号,导致大颗粒的信号比小颗粒的信号高2倍。所有AgNPs在生物环境中都是稳定的,不会光漂白,并且在离体设置中保留了强的PA成像信号。综上所述,我们的研究结果证明了AgNPs作为PA显像剂的优点,为新型成像探针的纳米工程提供了更好的理解,从而将AgNPs的应用扩展到传统的抗菌和伤口愈合应用之外。由于我们在本研究中探索的一些纳米结构目前正在临床试验中作为光热剂进行研究,因此术中成像和图像引导治疗可能会出现新的机会。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Structural engineering of silver nanoparticles for enhanced photoacoustic imaging

Structural engineering of silver nanoparticles for enhanced photoacoustic imaging

Photoacoustic (PA) imaging is a diagnostic tool widely explored in (pre)clinical settings, as it combines the strengths of optical and ultrasound imaging, resulting in high contrast resolution and deep tissue penetration. Although PA imaging can directly visualize some endogenous molecules (e.g. deoxygenated and oxygenated hemoglobin), most of its applications require the administration of external probes, including organic dyes and inorganic nanoparticles. Despite being historically used for antimicrobial and wound healing applications, silver nanoparticles (AgNPs) possess clear merits for PA imaging, including tunable optical properties, high-quality localized surface plasmon (LSP) resonances, strong photothermal conversions, and photostability. In this study, we explored new PA imaging probes based on silver nanocores (with different morphologies and sizes) and polymer shells, and identified the structural features that provide improved biocompatibility, stability, and probe performance. Notably, the size and morphology of the cores strongly impacted the PA signal of the silver probes. For example, among the different particles tested, plate-shaped AgNPs generated up to 3-fold greater signal, as their optical properties, specifically LSP bands and extinction coefficients, were better suited for PA imaging. Even if nanoconstructs displayed apparent inadequate optical features, e.g. in the case of spherical AgNPs with LSP bands centered in the blue region of the spectrum, a strong PA signal could still be obtained by manipulating the core size, resulting in up to 2-fold greater signal for larger particles in comparison to their smaller counterparts. All AgNPs were stable in biological environments, did not photobleach, and preserved strong PA imaging signals in ex vivo setups. Taken together, our results exemplify the merits of AgNPs as PA imaging agents, providing a better understanding of the nanoengineering of new imaging probes and thereby extending the applications of AgNPs beyond traditional antimicrobial and wound healing applications. Since some of the nanoconstructs we explored in this study are currently being investigated as photothermal agents in clinical trials, new opportunities may arise in intraoperative imaging and image-guided therapy.

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来源期刊
Nanoscale Advances
Nanoscale Advances Multiple-
CiteScore
8.00
自引率
2.10%
发文量
461
审稿时长
9 weeks
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