Anal Chem. 2021 Jan 26;93(3):1294-1303. doi: 10.1021/acs.analchem.0c00323. Epub 2020 Dec 15.
Vibrational circular dichroism (VCD) spectroscopy has emerged as a powerful platform to quantify chirality, a vital biological property that performs a pivotal role in the metabolism of life organisms. With a photoelastic modulator (PEM) integrated into an infrared spectrometer, the differential response of a sample to the direction of circularly polarized light can be used to infer conformation handedness. However, these optical components inherently exhibit chromatic behavior and are typically optimized at discrete spectral frequencies. Advancements of discrete frequency infrared (DFIR) spectroscopic microscopes in spectral image quality and data throughput are promising for use toward analytical VCD measurements. Utilizing the PEM advantages incorporated into a custom-built QCL microscope, we demonstrate a point scanning VCD instrument capable of acquiring spectra rapidly across all fingerprint region wavelengths in transmission configuration. Moreover, for the first time, we also demonstrate the VCD imaging performance of our instrument for site-specific chirality mapping of biological tissue samples. This study offers some insight into future possibilities of examining small, localized changes in tissue that have major implications for systemic diseases and their progression, while also laying the groundwork for additional modeling and validation in advancing the capability of VCD spectroscopy and imaging.
振动圆二色性(VCD)光谱学已经成为一种强大的平台,可以定量研究手性,手性是生命有机体内代谢的重要生物学特性。通过将电光调制器(PEM)集成到红外光谱仪中,可以利用样品对圆偏振光方向的差分响应来推断构象手性。然而,这些光学元件固有地表现出色散行为,并且通常在离散的光谱频率处进行优化。离散频率红外(DFIR)光谱显微镜在光谱图像质量和数据吞吐量方面的进步,有望用于分析 VCD 测量。利用集成在定制 QCL 显微镜中的 PEM 优势,我们展示了一种点扫描 VCD 仪器,该仪器能够在透射配置下快速获取所有指纹区域波长的光谱。此外,我们还首次展示了我们仪器的 VCD 成像性能,用于对生物组织样品进行特定位置的手性映射。这项研究为研究组织中微小、局部的变化提供了一些思路,这些变化对手性疾病及其进展具有重大影响,同时也为进一步的建模和验证奠定了基础,以推进 VCD 光谱学和成像的能力。