用于单分子光漂白研究的膜蛋白半胱氨酸特异性标记路线图。

IF 4.2 3区 生物学 Q1 BIOCHEMICAL RESEARCH METHODS
Melanie Ernst, Robyn Mahoney-Kruszka, Nathan B Zelt, Janice L Robertson
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引用次数: 0

摘要

单分子光漂白分析是量化膜中反应性膜蛋白寡聚的有效方法。它提供了稀释条件下蛋白质亚基上荧光团的二进制读数。不过,从该数据中量化蛋白质的化学计量需要亚基标记产量以及是否存在非特异性背景标记的信息。亚基特异性标记的任何增加都能提高确定低聚物状态的可信度。位点特异性标记的常见策略是将带有硫醇反应性马来酰亚胺基团的荧光团与取代的半胱氨酸共轭。然而,半胱氨酸的反应性很难预测,因为它取决于许多因素,如周围蛋白质结构的溶剂可及性和静电。在此,我们报告了筛选纯化膜蛋白上潜在半胱氨酸标记位点的一般方法。我们介绍了两个已对膜中二聚化反应进行表征的示例系统的结果:(1) CLC-ec1 Cl-/H+ 反载体,它是人类电压门控氯离子通道的大肠杆菌同源物;(2) 百日咳杆菌氟化物通道家族成员 Fluc 的突变体形式(Fluc-Bpe-N43S)。为了展示我们是如何识别这些位点的,我们首先讨论了假设合适的残基位置的考虑因素,并描述了在保持功能活性和稳健的单分子荧光信号的同时严格评估位点特异性标记的具体步骤。我们发现,我们最初的合理选择并不是成功的有力预测因素,因为对标记位点的严格测试表明,只有≈30%的位点最终可用于单分子光漂白研究。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
A roadmap to cysteine specific labeling of membrane proteins for single-molecule photobleaching studies.

Single-molecule photobleaching analysis is a useful approach for quantifying reactive membrane protein oligomerization in membranes. It provides a binary readout of a fluorophore attached to a protein subunit at dilute conditions. However, quantification of protein stoichiometry from this data requires information about the subunit labeling yields and whether there is non-specific background labeling. Any increases in subunit-specific labeling improves the ability to determine oligomeric states with confidence. A common strategy for site-specific labeling is by conjugation of a fluorophore bearing a thiol-reactive maleimide group to a substituted cysteine. Yet, cysteine reactivity can be difficult to predict as it depends on many factors such as solvent accessibility and electrostatics from the surrounding protein structure. Here we report a general methodology for screening potential cysteine labeling sites on purified membrane proteins. We present the results of two example systems for which the dimerization reactions in membranes have been characterized: (1) the CLC-ec1 Cl-/H+ antiporter, an Escherichia coli homologue of voltage-gated chloride ion channels in humans and (2) a mutant form of a member of the family of fluoride channels Fluc from Bordetella pertussis (Fluc-Bpe-N43S). To demonstrate how we identify such sites, we first discuss considerations of residue positions hypothesized to be suitable and then describe the specific steps to rigorously assess site-specific labeling while maintaining functional activity and robust single-molecule fluorescence signals. We find that our initial, well rationalized choices are not strong predictors of success, as rigorous testing of the labeling sites shows that only ≈ 30 % of sites end up being useful for single-molecule photobleaching studies.

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来源期刊
Methods
Methods 生物-生化研究方法
CiteScore
9.80
自引率
2.10%
发文量
222
审稿时长
11.3 weeks
期刊介绍: Methods focuses on rapidly developing techniques in the experimental biological and medical sciences. Each topical issue, organized by a guest editor who is an expert in the area covered, consists solely of invited quality articles by specialist authors, many of them reviews. Issues are devoted to specific technical approaches with emphasis on clear detailed descriptions of protocols that allow them to be reproduced easily. The background information provided enables researchers to understand the principles underlying the methods; other helpful sections include comparisons of alternative methods giving the advantages and disadvantages of particular methods, guidance on avoiding potential pitfalls, and suggestions for troubleshooting.
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