University of Edinburgh, School of Chemistry, Edinburgh, United Kingdom.
University of Southampton, School of Chemistry, Faculty of Engineering and Physical Sciences, Southampton, United Kingdom.
J Biomed Opt. 2023 Dec;28(12):126007. doi: 10.1117/1.JBO.28.12.126007. Epub 2023 Dec 28.
Rapid advances in medical imaging technology, particularly the development of optical systems with non-linear imaging modalities, are boosting deep tissue imaging. The development of reliable standards and phantoms is critical for validation and optimization of these cutting-edge imaging techniques.
We aim to design and fabricate flexible, multi-layered hydrogel-based optical standards and evaluate advanced optical imaging techniques at depth.
Standards were made using a robust double-network hydrogel matrix consisting of agarose and polyacrylamide. The materials generated ranged from single layers to more complex constructs consisting of up to seven layers, with modality-specific markers embedded between the layers.
These standards proved useful in the determination of the axial scaling factor for light microscopy and allowed for depth evaluation for different imaging modalities (conventional one-photon excitation fluorescence imaging, two-photon excitation fluorescence imaging, second harmonic generation imaging, and coherent anti-Stokes Raman scattering) achieving actual depths of 1550, 1550, 1240, and , respectively. Once fabricated, the phantoms were found to be stable for many months.
The ability to image at depth, the phantom's robustness and flexible layered structure, and the ready incorporation of "optical markers" make these ideal depth standards for the validation of a variety of imaging modalities.
医学成像技术的快速发展,特别是具有非线性成像方式的光学系统的发展,正在推动深层组织成像。可靠的标准和成像模型的开发对于这些前沿成像技术的验证和优化至关重要。
我们旨在设计和制造灵活的、多层水凝胶基光学标准品,并评估深度的先进光学成像技术。
标准品是使用由琼脂糖和聚丙烯酰胺组成的稳健的双网络水凝胶基质制造的。生成的材料从单层到多达七层的更复杂结构不等,各层之间嵌入有特定模式的标记物。
这些标准品有助于确定明场显微镜的轴向缩放因子,并能够评估不同成像模式(传统的单光子激发荧光成像、双光子激发荧光成像、二次谐波产生成像和相干反斯托克斯拉曼散射)的深度,实际深度分别为 1550、1550、1240 和 。一旦制造完成,这些模型在几个月内都很稳定。
这些模型具有在深层成像的能力、稳健性和灵活的分层结构,以及易于纳入“光学标记物”,使其成为各种成像模式验证的理想深度标准品。