Department of Chemistry , Washington University in St. Louis , One Brookings Drive , St. Louis , Missouri 63130 , United States.
Anal Chem. 2019 Oct 1;91(19):12560-12567. doi: 10.1021/acs.analchem.9b03491. Epub 2019 Sep 12.
Signaling proteins exemplified by calmodulin usually bind cooperatively to multiple ligands. Intermediate states and allosteric behavior are difficult to characterize. Here we extend a recently reported mass spectrometry (MS)-based method named LITPOMS (ligand titration, fast photochemical oxidation of proteins and mass spectrometry) that characterizes complex binding systems typically found as signaling proteins. As reported previously, calmodulin's response to binding four Ca can be determined by LITPOMS to reveal binding sites, binding order, and most importantly composite binding behavior. Modeling this behavior provides site-specific binding affinities. In this article, we dissect the composite, peptide-level conformational changes at several regions either by digestion with a different protease or by tandem MS of LITPOMS behavior at the amino-acid residue level. Such dissection greatly elevates spatial resolution and increases the confidence of binding-order assignment. These complementary views of complex protein conformational change recapitulate the cumulative understanding via a single approach, providing new insights on poorly understood yet important allostery and underpin an approach applicable for exploring other signaling systems.
以钙调蛋白为代表的信号蛋白通常协同结合多个配体。中间状态和变构行为很难表征。在这里,我们扩展了一种最近报道的基于质谱 (MS) 的方法,称为 LITPOMS(配体滴定、快速光化学氧化蛋白质和质谱),该方法可表征通常作为信号蛋白的复杂结合系统。如前所述,LITPOMS 可确定钙调蛋白对结合四个 Ca 的响应,以揭示结合位点、结合顺序,最重要的是复合结合行为。对这种行为进行建模可以提供具有特定结合位点的亲和力。在本文中,我们通过使用不同的蛋白酶进行消化或通过串联 MS 对氨基酸残基水平的 LITPOMS 行为进行分析,从几个区域解析复合肽级构象变化。这种剖析极大地提高了空间分辨率,并增加了结合顺序分配的可信度。这种对复杂蛋白质构象变化的互补观点通过单一方法概括了累积的理解,为理解不够充分但很重要的变构作用提供了新的见解,并为探索其他信号系统提供了一种可行的方法。