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Kinetic-based trapping by intervening sequence variants of the active sites of protein-disulfide isomerase identifies platelet protein substrates

机译:通过介入蛋白质-二硫键异构酶活性位点序列变异的基于动力学的捕获可识别血小板蛋白质底物

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摘要

Thiol isomerases such as protein-disulfide isomerase (PDI) direct disulfide rearrangements required for proper folding of nascent proteins synthesized in the endoplasmic reticulum. Identifying PDI substrates is challenging because PDI catalyzes conformational changes that cannot be easily monitored (e.g. compared with proteolytic cleavage or amino acid phosphorylation); PDI has multiple substrates; and it can catalyze either oxidation, reduction, or isomerization of substrates. Kinetic-based substrate trapping wherein the active site motif CGHC is modified to CGHA to stabilize a PDI-substrate intermediate is effective in identifying some substrates. A limitation of this approach, however, is that it captures only substrates that are reduced by PDI, whereas many substrates are oxidized by PDI. By manipulating the highly conserved -GH- residues in the CGHC active site of PDI, we created PDI variants with a slowed reaction rate toward substrates. The prolonged intermediate state allowed us to identify protein substrates that have biased affinities for either oxidation or reduction by PDI. Because extracellular PDI is critical for thrombus formation but its extracellular substrates are not known, we evaluated the ability of these bidirectional trapping PDI variants to trap proteins released from platelets and on the platelet surface. Trapped proteins were identified by mass spectroscopy. Of the trapped substrate proteins identified by mass spectroscopy, five proteins, cathepsin G, glutaredoxin-1, thioredoxin, GP1b, and fibrinogen, showed a bias for oxidation, whereas annexin V, heparanase, ERp57, kallekrein-14, serpin B6, tetranectin, and collagen VI showed a bias for reduction. These bidirectional trapping variants will enable more comprehensive identification of thiol isomerase substrates and better elucidation of their cellular functions.
机译:硫醇异构酶(例如蛋白质-二硫键异构酶(PDI))可直接折叠内质网中合成的新生蛋白质所需的二硫键重排。确定PDI底物具有挑战性,因为PDI会催化无法轻易监测的构象变化(例如与蛋白水解切割或氨基酸磷酸化相比); PDI具有多种基材;它可以催化底物的氧化,还原或异构化。基于动力学的底物捕获,其中将活性位点基序CGHC修饰为CGHA以稳定PDI-底物中间体,可以有效地识别某些底物。但是,这种方法的局限性在于它只能捕获被PDI还原的底物,而许多底​​物被PDI氧化。通过操纵PDI的CGHC活性位点中高度保守的-GH-残基,我们创建了PDI变体,其对底物的反应速度减慢了。延长的中间状态使我们能够鉴定出亲和力偏高的蛋白质底物,无论这些底物对PDI的氧化作用还是对PDI的还原作用。由于细胞外PDI对于血栓形成至关重要,但其细胞外底物尚不清楚,因此我们评估了这些双向捕获PDI变体捕获血小板和血小板表面释放的蛋白质的能力。捕获的蛋白质通过质谱鉴定。质谱鉴定出的被捕获底物蛋白质中,组织蛋白酶G,谷胱甘肽-1,硫氧还蛋白,GP1b和纤维蛋白原等5种蛋白质显示出氧化倾向,而膜联蛋白V,乙酰肝素酶,ERp57,kallekrein-14,丝氨酸蛋白酶抑制剂B6,四联蛋白,胶原VI显示出减少的倾向。这些双向捕获变体将能够更全面地鉴定巯基异构酶底物,并更好地阐明其细胞功能。

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