Laboratoire d'Imagerie Biomédicale, Sorbonne Université, CNRS, INSERM, LIB, 75006 Paris, France.
Matière et Systèmes Complexes, Université Paris Cité, CNRS, MSC, 75006 Paris, France.
Sensors (Basel). 2022 Aug 30;22(17):6543. doi: 10.3390/s22176543.
Photoacoustic (PA) imaging systems are spreading in the biomedical community, and the development of new PA contrast agents is an active area of research. However, PA contrast agents are usually characterized with spectrophotometry or uncalibrated PA imaging systems, leading to partial assessment of their PA efficiency. To enable quantitative PA spectroscopy of contrast agents with conventional PA imaging systems, we have developed an adapted calibration method. Contrast agents in solution are injected in a dedicated non-scattering tube phantom imaged at different optical wavelengths. The calibration method uses a reference solution of cupric sulfate to simultaneously correct for the spectral energy distribution of excitation light at the tube location and perform a conversion of the tube amplitude in the image from arbitrary to spectroscopic units. The method does not require any precise alignment and provides quantitative PA spectra, even with non-uniform illumination and ultrasound sensitivity. It was implemented on a conventional imaging setup based on a tunable laser operating between 680 nm and 980 nm and a 5 MHz clinical ultrasound array. We demonstrated robust calibrated PA spectroscopy with sample volumes as low as 15 μL of known chromophores and commonly used contrast agents. The validated method will be an essential and accessible tool for the development of new and efficient PA contrast agents by improving their quantitative characterization.
光声(PA)成像系统在生物医学领域得到了广泛应用,新型 PA 造影剂的开发是一个活跃的研究领域。然而,PA 造影剂通常采用分光光度法或未经校准的 PA 成像系统进行特征描述,这导致其 PA 效率的部分评估。为了使常规 PA 成像系统能够对造影剂进行定量 PA 光谱分析,我们开发了一种适应性校准方法。将溶液中的造影剂注入专用的无散射管体模型中,在不同的光学波长下进行成像。该校准方法使用硫酸铜参考溶液来同时校正管体位置处激发光的光谱能量分布,并将图像中的管体幅度从任意单位转换为光谱单位。该方法不需要任何精确的对准,即使在照明不均匀和超声灵敏度不同的情况下,也能提供定量的 PA 光谱。我们在基于可调谐激光(工作波长为 680nm 至 980nm)和 5MHz 临床超声阵列的常规成像设置上实现了该方法。我们用已知的发色团和常用的造影剂进行了 15μL 样本体积的稳健校准 PA 光谱测试,验证了该方法的有效性。该经过验证的方法将成为开发新型高效 PA 造影剂的重要且易于使用的工具,通过改善其定量表征来提高其性能。