小楔同步加速器晶体学对蛋白质分子精确结构分析的有用实验方面。

IF 2.6 4区 生物学 Q2 BIOCHEMICAL RESEARCH METHODS Acta Crystallographica. Section D, Structural Biology Pub Date : 2025-01-01 DOI:10.1107/S2059798324011987
Kunio Hirata
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引用次数: 0

摘要

低发射同步x射线技术和高灵敏度光子计数探测器的最新进展彻底改变了结构生物学中的蛋白质微晶体学。样品交换机器人和光束线控制的这些发展和改进为自动化和高效的无人值守数据收集铺平了道路。本研究利用小楔同步加速器晶体学(SWSX)对2型血管紧张素II受体、CNNM/CorC膜蛋白和多面体蛋白晶体等蛋白质晶体结构进行了分析,通过自动化测量大大提高了测量效率。我们使用SWSX评估数据质量,重点关注“海量数据收集”。在这种情况下,“海量”指的是多重性超过100的数据集。这一发现可能会导致开发更有效的实验条件,例如使用更少的晶体获得高分辨率数据。我们已经证明,应用机器学习(数据科学的现代关键组成部分)对数据组进行分类是分析过程的一个组成部分,可能在提高数据质量方面发挥关键作用。这些结果表明,对于难以分析的样品,SWSX是晶体结构分析方法的重要候选者之一:它可以实现多样化和复杂的蛋白质功能分析。
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Useful experimental aspects of small-wedge synchrotron crystallography for accurate structure analysis of protein molecules.

Recent advances in low-emittance synchrotron X-ray technology and highly sensitive photon-counting detectors have revolutionized protein micro-crystallography in structural biology. These developments and improvements to sample-exchange robots and beamline control have paved the way for automated and efficient unattended data collection. This study analyzed protein crystal structures such as type 2 angiotensin II receptor, CNNM/CorC membrane proteins and polyhedral protein crystals using small-wedge synchrotron crystallography (SWSX), which dramatically improves measurement efficiency through automated measurement. We evaluated the data quality using SWSX, focusing on `massive data collection'. In this context, `massive' refers to data sets with a multiplicity exceeding 100. The findings could potentially lead to the development of more efficient experimental conditions, such as obtaining high-resolution data using a smaller number of crystals. We have demonstrated that the application of machine learning, a modern key component of data science, to classify data groups is an integral part of the analysis process and may play a crucial role in improving data quality. These results indicate that SWSX is one of the essential candidates for crystal structure analysis methods for difficult-to-analyze samples: it can enable diverse and complex protein functional analysis.

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来源期刊
Acta Crystallographica. Section D, Structural Biology
Acta Crystallographica. Section D, Structural Biology BIOCHEMICAL RESEARCH METHODSBIOCHEMISTRY &-BIOCHEMISTRY & MOLECULAR BIOLOGY
CiteScore
4.50
自引率
13.60%
发文量
216
期刊介绍: Acta Crystallographica Section D welcomes the submission of articles covering any aspect of structural biology, with a particular emphasis on the structures of biological macromolecules or the methods used to determine them. Reports on new structures of biological importance may address the smallest macromolecules to the largest complex molecular machines. These structures may have been determined using any structural biology technique including crystallography, NMR, cryoEM and/or other techniques. The key criterion is that such articles must present significant new insights into biological, chemical or medical sciences. The inclusion of complementary data that support the conclusions drawn from the structural studies (such as binding studies, mass spectrometry, enzyme assays, or analysis of mutants or other modified forms of biological macromolecule) is encouraged. Methods articles may include new approaches to any aspect of biological structure determination or structure analysis but will only be accepted where they focus on new methods that are demonstrated to be of general applicability and importance to structural biology. Articles describing particularly difficult problems in structural biology are also welcomed, if the analysis would provide useful insights to others facing similar problems.
期刊最新文献
Reconsideration of the P-clusters in VFe proteins using the bond-valence method: towards their electron transfer and protonation. Making the most of an abundance of data. AlphaFold-guided molecular replacement for solving challenging crystal structures. Useful experimental aspects of small-wedge synchrotron crystallography for accurate structure analysis of protein molecules. Peter Main (1939-2024).
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