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通过二次谐波产生圆二色性对淀粉颗粒进行三维结构成像。

Three-dimensional structural imaging of starch granules by second-harmonic generation circular dichroism.

作者信息

Zhuo G-Y, Lee H, Hsu K-J, Huttunen M J, Kauranen M, Lin Y-Y, Chu S-W

机构信息

Department of Physics, National Taiwan University, Taipei, Taiwan.

出版信息

J Microsc. 2014 Mar;253(3):183-90. doi: 10.1111/jmi.12108. Epub 2014 Jan 6.

Abstract

Chirality is one of the most fundamental and essential structural properties of biological molecules. Many important biological molecules including amino acids and polysaccharides are intrinsically chiral. Conventionally, chiral species can be distinguished by interaction with circularly polarized light, and circular dichroism is one of the best-known approaches for chirality detection. As a linear optical process, circular dichroism suffers from very low signal contrast and lack of spatial resolution in the axial direction. It has been demonstrated that by incorporating nonlinear interaction with circularly polarized excitation, second-harmonic generation circular dichroism can provide much higher signal contrast. However, previous circular dichroism and second-harmonic generation circular dichroism studies are mostly limited to probe chiralities at surfaces and interfaces. It is known that second-harmonic generation, as a second-order nonlinear optical effect, provides excellent optical sectioning capability when combined with a laser-scanning microscope. In this work, we combine the axial resolving power of second-harmonic generation and chiral sensitivity of second-harmonic generation circular dichroism to realize three-dimensional chiral detection in biological tissues. Within the point spread function of a tight focus, second-harmonic generation circular dichroism could arise from the macroscopic supramolecular packing as well as the microscopic intramolecular chirality, so our aim is to clarify the origins of second-harmonic generation circular dichroism response in complicated three-dimensional biological systems. The sample we use is starch granules whose second-harmonic generation-active molecules are amylopectin with both microscopic chirality due to its helical structure and macroscopic chirality due to its crystallized packing. We found that in a starch granule, the second-harmonic generation for right-handed circularly polarized excitation is significantly different from second-harmonic generation for left-handed one, offering excellent second-harmonic generation circular dichroism contrast that approaches 100%. In addition, three-dimensional visualization of second-harmonic generation circular dichroism distribution with sub-micrometer spatial resolution is realized. We observed second-harmonic generation circular dichroism sign change across the starch granules, and the result suggests that in thick biological tissue, second-harmonic generation circular dichroism arises from macroscopic molecular packing. Our result provides a new method to visualize the organization of three-dimensional structures of starch granules. The second-harmonic generation circular dichroism imaging method expands the horizon of nonlinear chiroptical studies from simplified surface/solution environments to complicated biological tissues.

摘要

手性是生物分子最基本和重要的结构特性之一。许多重要的生物分子,包括氨基酸和多糖,本质上都是手性的。传统上,手性物种可以通过与圆偏振光的相互作用来区分,圆二色性是最著名的手性检测方法之一。作为一种线性光学过程,圆二色性的信号对比度非常低,并且在轴向缺乏空间分辨率。已经证明,通过引入与圆偏振激发的非线性相互作用,二次谐波产生圆二色性可以提供更高的信号对比度。然而,以前的圆二色性和二次谐波产生圆二色性研究大多局限于探测表面和界面处的手性。众所周知,二次谐波产生作为一种二阶非线性光学效应,与激光扫描显微镜结合时具有出色的光学切片能力。在这项工作中,我们将二次谐波产生的轴向分辨能力和二次谐波产生圆二色性的手性灵敏度相结合,以实现生物组织中的三维手性检测。在紧聚焦的点扩散函数范围内,二次谐波产生圆二色性可能源于宏观超分子堆积以及微观分子内手性,因此我们的目标是阐明复杂三维生物系统中二次谐波产生圆二色性响应的起源。我们使用的样品是淀粉颗粒,其二次谐波产生活性分子是支链淀粉,它由于螺旋结构而具有微观手性,并且由于结晶堆积而具有宏观手性。我们发现,在淀粉颗粒中,右旋圆偏振激发的二次谐波产生与左旋圆偏振激发的二次谐波产生有显著差异,提供了接近100%的出色二次谐波产生圆二色性对比度。此外,实现了具有亚微米空间分辨率的二次谐波产生圆二色性分布的三维可视化。我们观察到淀粉颗粒上二次谐波产生圆二色性符号的变化,结果表明在厚生物组织中,二次谐波产生圆二色性源于宏观分子堆积。我们的结果提供了一种可视化淀粉颗粒三维结构组织的新方法。二次谐波产生圆二色性成像方法将非线性手性光学研究的视野从简化的表面/溶液环境扩展到复杂的生物组织。

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