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利用合理设计的化学传感器研究内源性蛋白磷酸酶活性

Interrogating Endogenous Protein Phosphatase Activity with Rationally Designed Chemosensors.

作者信息

Beck Jon R, Lawrence Antoneal, Tung Amar S, Harris Edward N, Stains Cliff I

机构信息

Department of Chemistry, University of Nebraska-Lincoln , Lincoln, Nebraska 68588, United States.

Department of Chemistry, Lincoln University , Lincoln University, Pennsylvania 19352, United States.

出版信息

ACS Chem Biol. 2016 Jan 15;11(1):284-90. doi: 10.1021/acschembio.5b00506. Epub 2015 Dec 3.

Abstract

We introduce a versatile approach for repurposing protein kinase chemosensors, containing the phosphorylation-sensitive sulfonamido-oxine fluorophore termed Sox, for the specific determination of endogenous protein phosphatase activity from whole cell lysates and tissue homogenates. As a demonstration of this approach, we design and evaluate a direct chemosensor for protein tyrosine phosphatase-1B (PTP1B), an established signaling node in human disease. The optimal sensor design is capable of detecting as little as 6 pM (12 pg) full-length recombinant PTP1B and is remarkably selective for PTP1B among a panel of highly homologous tyrosine phosphatases. Coupling this robust activity probe with the specificity of antibodies allowed for the temporal analysis of endogenous PTP1B activity dynamics in lysates generated from HepG2 cells after stimulation with insulin. Lastly, we leveraged this assay format to profile PTP1B activity perturbations in a rat model of nonalcoholic fatty liver disease (NAFLD), providing direct evidence for elevated PTP1B catalytic activity in this disease state. Given the modular nature of this assay, we anticipate that this approach will have broad utility in monitoring phosphatase activity dynamics in human disease states.

摘要

我们介绍了一种多功能方法,用于重新利用蛋白激酶化学传感器,该传感器包含称为Sox的磷酸化敏感磺酰胺-氧杂萘邻酮荧光团,用于从全细胞裂解物和组织匀浆中特异性测定内源性蛋白磷酸酶活性。作为该方法的一个实例,我们设计并评估了一种针对蛋白酪氨酸磷酸酶-1B(PTP1B)的直接化学传感器,PTP1B是人类疾病中一个既定的信号节点。最佳传感器设计能够检测低至6 pM(12 pg)的全长重组PTP1B,并且在一组高度同源的酪氨酸磷酸酶中对PTP1B具有显著的选择性。将这种强大的活性探针与抗体的特异性相结合,使得在胰岛素刺激后从HepG2细胞产生的裂解物中对内源性PTP1B活性动态进行时间分析成为可能。最后,我们利用这种检测形式对非酒精性脂肪性肝病(NAFLD)大鼠模型中的PTP1B活性扰动进行了分析,为该疾病状态下PTP1B催化活性升高提供了直接证据。鉴于该检测方法的模块化性质,我们预计这种方法在监测人类疾病状态下的磷酸酶活性动态方面将具有广泛的用途。

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