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基于机器人的晶体学系统及其在药物发现中的应用的最新进展。

Recent progress in robot-based systems for crystallography and their contribution to drug discovery.

机构信息

Commissariat à l'Energie Atomique et aux Energies Alternatives (CEA), Centre National de la Recherche Scientifique (CNRS), Université Joseph Fourier (UJF), Institut de Biologie Structurale Jean-Pierre Ebel (IBS), F-38027 Grenoble Cedex 1, France.

出版信息

Expert Opin Drug Discov. 2013 Jul;8(7):835-47. doi: 10.1517/17460441.2013.793666. Epub 2013 May 8.

Abstract

INTRODUCTION

X-ray crystallography is the main tool for macromolecular structure solution at atomic resolution. It provides key information for the understanding of protein function, opening opportunities for the modulation of enzymatic mechanisms, and protein-ligand interactions. As a consequence, macromolecular crystallography plays an essential role in drug design, as well as in the a posteriori validation of drug mechanisms.

AREAS COVERED

The demand for method developments and also tools for macromolecular crystallography has significantly increased over the past 10 years. As a consequence, access to the facilities required for these investigations, such as synchrotron beamlines, became more difficult and significant efforts were dedicated to the automation of the experimental setup in laboratories. In this article, the authors describe how this was accomplished and how robot-based systems contribute to the enhancement of the macromolecular structure solution pipeline.

EXPERT OPINION

The evolution in robot technology, together with progress in X-ray beam performance and software developments, contributes to a new era in macromolecular X-ray crystallography. Highly integrated experimental environments open new possibilities for crystallography experiments. It is likely that it will also change the way this technique will be used in the future, opening the field to a larger community.

摘要

简介

X 射线晶体学是在原子分辨率下解析大分子结构的主要工具。它为理解蛋白质功能提供了关键信息,为调节酶机制和蛋白质-配体相互作用开辟了机会。因此,大分子晶体学在药物设计以及药物机制的事后验证中起着至关重要的作用。

涵盖领域

在过去的 10 年中,对方法开发以及大分子晶体学工具的需求显著增加。因此,获得这些研究所需的设施(如同步加速器光束线)变得更加困难,并且实验室致力于实验设备的自动化。在本文中,作者描述了如何实现这一目标,以及基于机器人的系统如何有助于增强大分子结构解决管道。

专家意见

机器人技术的发展,加上 X 射线束性能和软件发展的进步,为大分子 X 射线晶体学的新时代做出了贡献。高度集成的实验环境为晶体学实验开辟了新的可能性。很可能它也将改变未来使用该技术的方式,为更广泛的社区开辟这一领域。

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