Potential of X-ray free-electron lasers for challenging targets in structure-based drug discovery

Q1 Pharmacology, Toxicology and Pharmaceutics Drug Discovery Today: Technologies Pub Date : 2021-12-01 DOI:10.1016/j.ddtec.2021.08.002
Gabriela Nass Kovacs
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引用次数: 5

Abstract

X-ray crystallography has provided the vast majority of three-dimensional macromolecular structures. Most of these are high-resolution structures that enable a detailed understanding of the underlying molecular mechanisms. The standardized workflows and robust infrastructure of synchrotron-based macromolecular crystallography (MX) offer the high throughput essential to cost-conscious investigations in structure- and fragment-based drug discovery. Nonetheless conventional MX is limited by fundamental bottlenecks, in particular X-ray radiation damage, which limits the amount of data extractable from a crystal. While this limit can in principle be circumvented by using larger crystals, crystals of the requisite size often cannot be obtained in sufficient quality. That is especially true for membrane protein crystals, which constitute the majority of current drug targets. This conventional paradigm for MX-suitable samples changed dramatically with the advent of serial femtosecond crystallography (SFX) based on the ultra-short and extremely intense X-ray pulses of X-ray Free-Electron Lasers. SFX provides high-resolution structures from tiny crystals and does so with uniquely low levels of radiation damage. This has yielded a number of novel structures for G-protein coupled receptors, one of the most relevant membrane protein superfamilies for drug discovery, as well as tantalizing advances in time-resolved crystallography that elucidate protein dynamics. This article attempts to map the potential of SFX for drug discovery, while providing the reader with an overview of the yet remaining technical challenges associated with such a novel technique as SFX.

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x射线自由电子激光器在基于结构的药物发现中具有挑战性目标的潜力
x射线晶体学提供了绝大多数的三维大分子结构。其中大多数是高分辨率结构,可以详细了解潜在的分子机制。基于同步加速器的大分子晶体学(MX)的标准化工作流程和强大的基础设施为基于结构和片段的药物发现的成本意识研究提供了必要的高通量。尽管如此,传统的MX仍然受到基本瓶颈的限制,特别是x射线辐射损伤,这限制了从晶体中提取的数据量。虽然原则上可以通过使用更大的晶体来绕过这一限制,但所需尺寸的晶体往往无法获得足够质量的晶体。对于膜蛋白晶体来说尤其如此,它构成了目前大多数的药物靶点。随着基于x射线自由电子激光器的超短极强x射线脉冲的连续飞秒晶体学(SFX)的出现,这种适合mx样品的传统范例发生了巨大变化。SFX从微小晶体中提供高分辨率结构,并且具有独特的低辐射损伤水平。这为g蛋白偶联受体(药物发现中最相关的膜蛋白超家族之一)提供了许多新的结构,同时在阐明蛋白质动力学的时间分辨晶体学方面也取得了诱人的进展。本文试图描绘SFX在药物发现方面的潜力,同时为读者提供与SFX这样的新技术相关的技术挑战的概述。
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Drug Discovery Today: Technologies
Drug Discovery Today: Technologies Pharmacology, Toxicology and Pharmaceutics-Drug Discovery
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期刊介绍: Discovery Today: Technologies compares different technological tools and techniques used from the discovery of new drug targets through to the launch of new medicines.
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