Gogoi Ankur, Konwer Surajit, Zhuo Guan-Yu
Department of Physics, Jagannath Barooah College, Jorhat, India.
Department of Chemistry, Dibrugarh University, Dibrugarh, India.
Front Chem. 2021 Feb 10;8:611833. doi: 10.3389/fchem.2020.611833. eCollection 2020.
A molecule, molecular aggregate, or protein that cannot be superimposed on its mirror image presents chirality. Most living systems are organized by chiral building blocks, such as amino acids, peptides, and carbohydrates, and any change in their molecular structure (i.e., handedness or helicity) alters the biochemical and pharmacological functions of the molecules, many of which take place at surfaces. Therefore, studying surface chirogenesis at the nanoscale is fundamentally important and derives various applications. For example, since proteins contain highly ordered secondary structures, the intrinsic chirality can be served as a signature to measure the dynamics of protein adsorption and protein conformational changes at biological surfaces. Furthermore, a better understanding of chiral recognition and separation at bio-nanointerfaces is helpful to standardize chiral drugs and monitor the synthesis of adsorbents with high precision. Thus, exploring the changes in surface chirality with polarized excitations would provide structural and biochemical information of the adsorbed molecules, which has led to the development of label-free and noninvasive measurement tools based on linear and nonlinear optical effects. In this review, the principles and selected applications of linear and nonlinear optical methods for quantifying surface chirality are introduced and compared, aiming to conceptualize new ideas to address critical issues in surface biochemistry.
一个分子、分子聚集体或蛋白质若不能与其镜像重叠,则具有手性。大多数生命系统由手性构建块组成,如氨基酸、肽和碳水化合物,其分子结构的任何变化(即手性或螺旋性)都会改变分子的生化和药理功能,其中许多功能发生在表面。因此,在纳米尺度上研究表面手性起源至关重要,并衍生出各种应用。例如,由于蛋白质含有高度有序的二级结构,其固有手性可作为一种特征,用于测量蛋白质在生物表面的吸附动力学和蛋白质构象变化。此外,更好地理解生物纳米界面的手性识别和分离有助于规范手性药物,并高精度监测吸附剂的合成。因此,探索偏振激发下表面手性的变化将提供吸附分子的结构和生化信息,这导致了基于线性和非线性光学效应的无标记和非侵入性测量工具的发展。在这篇综述中,介绍并比较了用于量化表面手性的线性和非线性光学方法的原理及选定的应用,旨在构思新的思路以解决表面生物化学中的关键问题。