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Evaluation of commercial virtually imaged phase array and Fabry-Pérot based Brillouin spectrometers for applications to biology

机译:商业几乎成像阶段阵列和法布里 - Pérot的布里渊光谱仪评估用于生物学的应用

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摘要

Measuring the complex mechanical properties of biological objects has become a necessity to answer key questions in mechanobiology and to propose innovative clinical and therapeutic strategies. In this context, Brillouin light scattering (BLS) has recently come into vogue, offering quantitative imaging of the mechanical properties without labels and with a micrometer resolution. In biological samples, the magnitude of the spectral changes are typically of a few tens of MHz, and the ability of modern spectrometers to monitor such subtle changes needs to be evaluated. Moreover, the multiplicity of variations in optical arrangements, specific to each lab, requires to set a standard for the assessment of the characteristics of BLS systems. In this paper we propose a protocol to evaluate the precision and accuracy of two commercial spectrometers that is reproducible across labs. For a meaningful comparison, we coupled the spectrometers to the same microscope and to the same laser. We first evaluated the optimum acquisition time and laser power. We evaluated the precision using pure water samples. We determined the accuracy by probing water solutions with increasing concentration of salt and comparing it with theory. Following these quantifications, we applied the VIPA-based spectrometer to tumor spheroids engineered from different cell lines that possess different metastatic potentials and resistance to therapies. On these models, we detected significant changes in the linewidth suggesting that BLS measurements of the viscosity could be used as a read-out to distinguish different levels of drug resistance.
机译:测量生物物体的复杂机械性能已成为在力学学中回答关键问题的必要性,并提出创新的临床和治疗策略。在这种情况下,布里渊光散射(BLS)最近进入了流行,提供了没有标记的机械性能的定量成像,并且具有千分尺的分辨率。在生物样本中,光谱变化的大小通常是几十MHz,并且现代光谱仪监测这种微妙变化的能力需要进行评估。此外,对每个实验室特定的光学布置的多种变化需要为评估BLS系统的特性来设定标准。在本文中,我们提出了一种协议,以评估两种商业光谱仪的精度和准确性,这些商业光谱仪在实验室可再现。为了有意义的比较,我们将光谱仪耦合到相同的显微镜和相同的激光器。我们首先评估了最佳的采集时间和激光功率。我们使用纯水样品评估了精度。我们通过增加盐浓度的水溶液来确定精度,并将其与理论进行比较。遵循这些量化,我们将基于VIPA的光谱仪应用于从不同细胞系的肿瘤球体,具有不同的转移势和对疗法的抵抗力。在这些模型上,我们检测到线宽的显着变化,表明粘度的BLS测量可以用作读出以区分不同水平的耐药性。

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