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一种定量化的化学蛋白质组学平台,用于监测复杂蛋白质组中硒半胱氨酸的反应性。

A Quantitative Chemoproteomic Platform to Monitor Selenocysteine Reactivity within a Complex Proteome.

机构信息

Department of Chemistry, Boston College, Chestnut Hill, MA 02467, USA.

Peking-Tsinghua Center for Life Sciences, Peking University, Beijing 100871, China.

出版信息

Cell Chem Biol. 2018 Sep 20;25(9):1157-1167.e4. doi: 10.1016/j.chembiol.2018.05.017. Epub 2018 Jul 5.

Abstract

Mammalian selenocysteine (Sec)-containing proteins, selenoproteins, are important to (patho)physiological processes, including redox homeostasis. Sec residues have been recalcitrant to mass spectrometry-based chemoproteomic methods that enrich for reactive cysteine (Cys) residues with electrophilic chemical probes, despite confirmed reactivity of Sec with these electrophiles. Highly abundant Cys peptides likely suppress low-abundant Sec peptides. By exploiting the decreased pK of Sec relative to Cys, we have developed a chemoproteomic platform that relies on low pH (pH 5.75) electrophile labeling, reducing Cys reactivity and enhancing identification of Sec-containing peptides across mouse tissues and cell lines. The utility of this Sec-profiling platform is underscored by evaluation of the selectivity of auranofin, an inhibitor of the selenoprotein, thioredoxin reductase, against both reactive Cys- and Sec-containing proteins. Platform limitations pertain to the non-physiological low-pH conditions that could perturb protein structure and function. Future work necessitates the discovery of Sec-selective electrophiles that function at physiological pH.

摘要

哺乳动物含硒半胱氨酸(Sec)蛋白,即硒蛋白,对(病理)生理过程很重要,包括氧化还原稳态。尽管已经证实 Sec 与这些亲电试剂反应,但 Sec 残基一直抵制基于质谱的化学蛋白质组学方法,这些方法用于富集具有亲电化学探针的反应性半胱氨酸(Cys)残基。高丰度的 Cys 肽可能会抑制低丰度的 Sec 肽。通过利用 Sec 相对于 Cys 的降低 pK 值,我们开发了一种化学蛋白质组学平台,该平台依赖于低 pH(pH 5.75)亲电标记,降低 Cys 的反应性,并增强对跨鼠标组织和细胞系的含有 Sec 的肽的鉴定。通过评估金诺芬(一种硒蛋白,即谷胱甘肽还原酶的抑制剂)对含反应性 Cys 和 Sec 的蛋白质的选择性,突显了该 Sec 分析平台的实用性。该平台的局限性在于非生理的低 pH 条件可能会破坏蛋白质结构和功能。未来的工作需要发现能够在生理 pH 下发挥作用的 Sec 选择性亲电试剂。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/5c50/6510024/747d53fbf296/nihms-1016557-f0001.jpg

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