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Mie scatter corrections in single cell infrared microspectroscopy

机译:单细胞红外光谱中的Mie散射校正

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摘要

Strong Mie scattering signatures hamper the chemical interpretation and multivariate analysis of the infrared microscopy spectra of single cells and tissues. During recent years, several numerical Mie scatter correction algorithms for the infrared spectroscopy of single cells have been published. In the paper at hand, we critically reviewed existing algorithms for the correction of Mie scattering and suggest improvements. We developed an iterative algorithm based on Extended Multiplicative Scatter Correction (EMSC), for the retrieval of pure absorbance spectra from highly distorted infrared spectra of single cells. The new algorithm uses the van de Hulst approximation formula for the extinction efficiency employing a complex refractive index. The iterative algorithm involves the establishment of an EMSC meta-model. While existing iterative algorithms for the correction of resonant Mie scattering employ three independent parameters for establishing a meta-model, we could decrease the number of parameters from three to two independent parameters, which reduced the calculation time for the Mie scattering curves for the iterative EMSC meta-model by a factor of 10. Moreover, by employing the Hilbert transform for evaluating the Kramers-Kronig relations based on a FFT algorithm in Matlab, we further improved the speed of the algorithm by a factor of 100. For testing the algorithm we simulate distorted apparent absorbance spectra by utilizing the exact theory for the scattering of infrared light at absorbing spheres, taking into account the high numerical aperture of infrared microscopes employed for the analysis of single cells and tissues. In addition, the algorithm was applied to measured absorbance spectra of single lung cancer cells.
机译:强大的Mie散射特征阻碍了单个细胞和组织的红外显微镜光谱的化学解释和多变量分析。近年来,已发布了几种用于单细胞红外光谱的数值Mie散射校正算法。在本文中,我们严格审查了用于校正Mie散射的现有算法,并提出了改进建议。我们开发了一种基于扩展乘法散射校正(EMSC)的迭代算法,用于从单个细胞的高度失真的红外光谱中检索纯吸收光谱。新算法使用van de Hulst近似公式,通过复折射率来实现消光效率。迭代算法涉及EMSC元模型的建立。虽然现有的用于校正共振Mie散射的迭代算法使用三个独立的参数来建立元模型,但我们可以将参数的数量从三个独立的参数减少到两个独立的参数,从而减少了迭代EMSC的Mie散射曲线的计算时间元模型的系数是10。此外,在Matlab中,基于FFT算法,通过采用希尔伯特变换来评估Kramers-Kronig关系,我们将算法的速度进一步提高了100倍。为了测试该算法,我们考虑到用于分析单个细胞和组织的红外显微镜的高数值孔径,利用精确的理论对吸收球处的红外光进行散射,可以模拟扭曲的表观吸收光谱。此外,该算法还用于测量单个肺癌细胞的吸收光谱。

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