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直接从三维电子衍射数据确定生物源晶体的结构

Structure Determination of Biogenic Crystals Directly from 3D Electron Diffraction Data.

作者信息

Wagner Avital, Merkelbach Johannes, Samperisi Laura, Pinsk Noam, Kariuki Benson M, Hughes Colan E, Harris Kenneth D M, Palmer Benjamin A

机构信息

Department of Chemistry, Ben-Gurion University of the Negev, Beer-Sheba 8410501, Israel.

Eldico Scientific AG, Villigen, Aargau 5234, Switzerland.

出版信息

Cryst Growth Des. 2024 Jan 14;24(3):899-905. doi: 10.1021/acs.cgd.3c01290. eCollection 2024 Feb 7.

Abstract

Highly reflective assemblies of purine, pteridine, and flavin crystals are used in the coloration and visual systems of many different animals. However, structure determination of biogenic crystals by single-crystal XRD is challenging due to the submicrometer size and beam sensitivity of the crystals, and powder XRD is inhibited due to the small volumes of powders, crystalline impurity phases, and significant preferred orientation. Consequently, the crystal structures of many biogenic materials remain unknown. Herein, we demonstrate that the 3D electron diffraction (3D ED) technique provides a powerful alternative approach, reporting the successful structure determination of biogenic guanine crystals (from spider integument, fish scales, and scallop eyes) from 3D ED data confirmed by analysis of powder XRD data. The results show that all biogenic guanine crystals studied are the previously known β-polymorph. This study highlights the considerable potential of 3D ED for elucidating the structures of biogenic molecular crystals in the nanometer-to-micrometer size range. This opens up an important opportunity in the development of organic biomineralization, for which structural knowledge is critical for understanding the optical functions of biogenic materials and their possible applications as sustainable, biocompatible optical materials.

摘要

嘌呤、蝶啶和黄素晶体的高反射组件被用于许多不同动物的着色和视觉系统中。然而,由于晶体的亚微米尺寸和对光束的敏感性,通过单晶X射线衍射(XRD)确定生物源晶体的结构具有挑战性,并且由于粉末体积小、晶体杂质相以及显著的择优取向,粉末XRD也受到限制。因此,许多生物源材料的晶体结构仍然未知。在此,我们证明三维电子衍射(3D ED)技术提供了一种强大的替代方法,报告了通过粉末XRD数据分析证实的3D ED数据成功确定生物源鸟嘌呤晶体(来自蜘蛛外皮、鱼鳞和扇贝眼睛)的结构。结果表明,所有研究的生物源鸟嘌呤晶体都是先前已知的β-多晶型物。这项研究突出了3D ED在阐明纳米到微米尺寸范围内生物源分子晶体结构方面的巨大潜力。这为有机生物矿化的发展开辟了一个重要机遇,对于有机生物矿化而言,结构知识对于理解生物源材料的光学功能及其作为可持续、生物相容光学材料的可能应用至关重要。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/d3f4/10853906/659d12e9bdd8/cg3c01290_0001.jpg

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