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迈向荧光数字孪生:使用固体模型对荧光蒙特卡罗模拟进行多参数实验验证

Toward fluorescence digital twins: multi-parameter experimental validation of fluorescence Monte Carlo simulations using solid phantoms.

作者信息

Nguyen Mayna H, LaRochelle Ethan P M, Robledo Edwin A, Ruiz Alberto J

机构信息

QUEL Imaging, White River Junction, Vermont, United States.

出版信息

J Biomed Opt. 2025 Dec;30(Suppl 3):S34104. doi: 10.1117/1.JBO.30.S3.S34104. Epub 2025 May 27.

Abstract

SIGNIFICANCE

As fluorescence-guided surgery (FGS) gains clinical adoption, robust and experimentally validated computational models for tissue fluorescence are increasingly essential. Although there have been several developments in modeling fluorescence with Monte Carlo simulations, the scope of the experimental validation has been limited in the parameters tested and phantoms used.

AIM

We aim to present and experimentally validate a graphics processing unit (GPU)-accelerated, voxel-based Monte Carlo fluorescence framework capable of modeling varying fluorophore concentrations, optical properties, and complex three-dimensional (3D) geometries.

APPROACH

A two-step approach (MCX-ExEm) based on Monte Carlo eXtreme was developed for simulating fluorescence. Both commercial reference targets and custom 3D-printed phantoms with well-characterized optical properties were imaged for varying parameters-including absorption, scattering, fluorophore concentrations, and geometries-and compared against simulations.

RESULTS

Strong agreement is observed between simulated and experimental fluorescence across all tested parameters. MCX-ExEm accurately captures nonlinear quenching at high fluorophore concentrations, variations driven by scattering and absorption, intensity scaling with volume, and depth-dependent attenuation and resolution. Minor deviations occur primarily under low-scattering or low-absorption regimes, where optical characterization presents greater uncertainties.

CONCLUSIONS

By integrating experimentally validated simulations with a broad range of solid phantoms, this framework establishes a foundation for developing fluorescence digital twins, enabling faster and more systemic testing of fluorescence imaging systems. These findings can help accelerate the design and optimization of FGS and other fluorescence-based biomedical applications.

摘要

意义

随着荧光引导手术(FGS)在临床上得到应用,用于组织荧光的强大且经过实验验证的计算模型变得越来越重要。尽管在利用蒙特卡洛模拟对荧光进行建模方面已经有了一些进展,但实验验证的范围在测试参数和使用的体模方面受到限制。

目的

我们旨在提出并通过实验验证一种基于图形处理单元(GPU)加速的、基于体素的蒙特卡洛荧光框架,该框架能够对不同的荧光团浓度、光学特性和复杂的三维(3D)几何形状进行建模。

方法

开发了一种基于蒙特卡洛极限(MCX-ExEm)的两步法来模拟荧光。对具有良好光学特性表征的商业参考目标和定制3D打印体模进行成像,以获取不同参数(包括吸收、散射、荧光团浓度和几何形状)下的图像,并与模拟结果进行比较。

结果

在所有测试参数下,模拟荧光和实验荧光之间观察到高度一致性。MCX-ExEm准确地捕捉到了高荧光团浓度下的非线性猝灭、由散射和吸收驱动的变化、强度随体积的缩放以及深度相关的衰减和分辨率。微小偏差主要出现在低散射或低吸收状态下,此时光学表征存在更大的不确定性。

结论

通过将经过实验验证的模拟与广泛的实体体模相结合,该框架为开发荧光数字孪生模型奠定了基础,能够对荧光成像系统进行更快、更系统的测试。这些发现有助于加速FGS和其他基于荧光的生物医学应用的设计和优化。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/2c14/12119851/062204654b7f/JBO-030-S34104-g001.jpg

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