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采用小角 X 射线和中子散射(SAXS 和 SANS)以及光散射实验对生物材料进行结构表征。

Structural Characterization of Biomaterials by Means of Small Angle X-rays and Neutron Scattering (SAXS and SANS), and Light Scattering Experiments.

机构信息

CNR-IPCF Consiglio Nazionale delle Ricerche, Istituto per i Processi Chimico-Fisici, 98158 Messina, Italy.

CNR-ISMN, Consiglio Nazionale delle Ricerche, Istituto Studio Materiali Nanostrutturati, 00015 Roma, Italy.

出版信息

Molecules. 2020 Nov 29;25(23):5624. doi: 10.3390/molecules25235624.

Abstract

Scattering techniques represent non-invasive experimental approaches and powerful tools for the investigation of structure and conformation of biomaterial systems in a wide range of distances, ranging from the nanometric to micrometric scale. More specifically, small-angle X-rays and neutron scattering and light scattering techniques represent well-established experimental techniques for the investigation of the structural properties of biomaterials and, through the use of suitable models, they allow to study and mimic various biological systems under physiologically relevant conditions. They provide the ensemble averaged (and then statistically relevant) information under in situ and conditions, and represent useful tools complementary to the various traditional imaging techniques that, on the contrary, reveal more local structural information. Together with the classical structure characterization approaches, we introduce the basic concepts that make it possible to examine inter-particles interactions, and to study the growth processes and conformational changes in nanostructures, which have become increasingly relevant for an accurate understanding and prediction of various mechanisms in the fields of biotechnology and nanotechnology. The upgrade of the various scattering techniques, such as the contrast variation or time resolved experiments, offers unique opportunities to study the nano- and mesoscopic structure and their evolution with time in a way not accessible by other techniques. For this reason, highly performant instruments are installed at most of the facility research centers worldwide. These new insights allow to largely ameliorate the control of (chemico-physical and biologic) processes of complex (bio-)materials at the molecular length scales, and open a full potential for the development and engineering of a variety of nano-scale biomaterials for advanced applications.

摘要

散射技术代表了非侵入性的实验方法和强大的工具,可用于研究生物材料系统在广泛距离范围内的结构和构象,从纳米到微米尺度。更具体地说,小角 X 射线和中子散射以及光散射技术是研究生物材料结构特性的成熟实验技术,通过使用合适的模型,它们可以在生理相关条件下研究和模拟各种生物系统。它们提供了在原位和条件下的整体平均(然后是统计相关)信息,并作为各种传统成像技术的有用补充工具,这些技术相反地揭示了更多的局部结构信息。与经典的结构表征方法一起,我们介绍了基本概念,这些概念使得研究颗粒间相互作用,以及研究纳米结构中的生长过程和构象变化成为可能,这些对于准确理解和预测生物技术和纳米技术领域的各种机制变得越来越重要。各种散射技术的升级,如对比度变化或时间分辨实验,提供了独特的机会,以其他技术无法实现的方式研究纳米和介观结构及其随时间的演变。出于这个原因,世界上大多数设施研究中心都安装了高性能仪器。这些新的见解极大地改善了对复杂(生物)材料在分子长度尺度上的(化学物理和生物)过程的控制,并为开发和工程各种纳米级生物材料以实现先进应用开辟了广阔的潜力。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/ff20/7730346/1eaf3abe5a39/molecules-25-05624-g001.jpg

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