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基于上转换纳米粒子的固态光学组织体模工具,用于生物医学应用。

Solid optical tissue phantom tools based on upconverting nanoparticles for biomedical applications.

机构信息

Tyndall National Institute, Biophotonics@Tyndall, IPIC, Cork, Ireland.

University College Cork, Department of Physics, Cork, Ireland.

出版信息

J Biomed Opt. 2023 Mar;28(3):036004. doi: 10.1117/1.JBO.28.3.036004. Epub 2023 Mar 11.

Abstract

SIGNIFICANCE

Phantoms play a critical role in the development of biophotonics techniques. There is a lack of novel phantom tools in the emerging field of upconverting nanoparticles (UCNPs) for biophotonics application. This work provides a range of UCNP-based phantom tools and a manufacturing recipe to bridge the gap and accelerate the development of UCNP-based biophotonics applications.

AIM

The study aims to provide a well-characterized UCNP-based solid phantom recipe and set of phantom tools to address a wide range of UCNP-based biophotonics applications.

APPROACH

A solid phantom recipe based on silicone matrix was developed to manufacture UCNP-based phantoms. A lab built UCNP imaging system was used to characterize upconverted fluorescence emission of phantoms for linearity, homogeneity, and long-term stability. A photon time-of-flight spectroscopy technique was used to characterize the optical properties of the phantoms.

RESULTS

In total, 24 phantoms classified into 4 types, namely homogeneous, multilayer, inclusion, and base phantoms, were manufactured. The phantoms exhibit linear behavior over the dosage range of UCNPs. The phantoms were found to be stable over a limited observed period of 4 months with a coefficient of variation of . The deep tissue imaging case showed that increasing the thickness of tissue reduced the UCNP emission.

CONCLUSIONS

A first-of-its-kind UCNP-based solid phantom recipe was developed, and four types of UCNP phantom tools to explore biophotonics applications were presented. The UCNP phantoms exhibited a linear behavior with dosage and were stable over time. An example case showed the potential use of the phantom for deep tissue imaging applications. With recent advance in the use of UCNPs for biophotonics, we believe our recipe and tools will play a pivotal role in the growth of the UCNPs for biophotonics applications.

摘要

意义

荧光体在生物光子学技术的发展中起着至关重要的作用。在新兴的上转换纳米粒子(UCNP)生物光子学应用领域,缺乏新型的荧光体工具。本工作提供了一系列基于 UCNP 的荧光体工具和制造方案,以弥补这一空白,加速基于 UCNP 的生物光子学应用的发展。

目的

本研究旨在提供一种经过良好表征的基于 UCNP 的固态荧光体配方和一组荧光体工具,以满足广泛的基于 UCNP 的生物光子学应用。

方法

开发了一种基于硅基质的固态荧光体配方来制造基于 UCNP 的荧光体。使用实验室构建的 UCNP 成像系统来表征荧光体的上转换荧光发射的线性度、均一性和长期稳定性。使用光子飞行时间光谱技术来表征荧光体的光学性质。

结果

总共制造了 24 种荧光体,分为 4 种类型,即均匀型、多层型、包含型和基础型荧光体。荧光体在 UCNP 剂量范围内表现出线性行为。荧光体在观察到的 4 个月有限时间内表现出稳定,变异系数为 。深部组织成像案例表明,增加组织厚度会降低 UCNP 的发射。

结论

开发了首例基于 UCNP 的固态荧光体配方,并提出了四种类型的 UCNP 荧光体工具来探索生物光子学应用。UCNP 荧光体表现出与剂量的线性关系,并且随着时间的推移保持稳定。一个案例表明,该荧光体在深部组织成像应用中具有潜在的用途。随着 UCNP 在生物光子学中的应用的最新进展,我们相信我们的配方和工具将在 UCNP 用于生物光子学应用的发展中发挥关键作用。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/0a06/10006686/02a58fe30248/JBO-028-036004-g001.jpg

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