电化学生物传感器 2008

Peptide biosensors for the electrochemical measurement of protein kinase activity.

Analytical chemistry Kerman K, Song H, Duncan JS, Litchfield DW, Kraatz HB
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组成图示

示意图生成中

传感器类型

电化学生物传感器

检测对象

蛋白激酶活性(protein kinase activity)及小分子抑制剂;具体包括CK2(casein kinase 2, CK2R/CK2R′)、Abl1-T315I、HER2/ErbB2;样品基质为缓冲液、HeLa细胞裂解液、U2-OS细胞裂解液。

检测原理

金微电极表面先经NHS-脂酸酯共价固定激酶特异性底物肽,并用PEG-thiol 5000封闭剩余金表面。加入蛋白激酶和Fc-ATP后,激酶催化将Fc-ATP的γ-磷酸-二茂铁基团转移到肽的Ser/Thr/Tyr残基,生成表面二茂铁化磷酸肽。二茂铁基团在电极表面发生可逆氧化还原,CV或SWV阳极氧化电流与磷酸化程度及激酶活性成正比。加入小分子抑制剂后,激酶催化磷酸化受抑,表面二茂铁量减少,电流下降,可据此估算Ki。ALP去磷酸化可释放二茂铁并使电流下降,证明磷酸化事件可逆。该方法无需额外荧光或放射性标记,直接以Fc-ATP作为氧化还原信号标记。

检测灵敏度

原文未报告 LOD、线性范围、灵敏度斜率或 R^2。

效应效果

该传感器在缓冲液和细胞裂解液中检测CK2、Abl1-T315I和HER2活性。SWV可区分U2-OS裂解液中CK2过表达、内源、激酶失活和正常表达,与放射性检测一致。Abl1/HER2不磷酸化CK2肽,CK2肽对Abl1/HER2仅背景,FLT3对Abl1信号低;ALP去磷酸化使电流下降,证明可逆。动力学与文献相符:CK2R Km 0.087 mM、Vmax 1.97 µmol min-1 mg-1;CK2R′ 0.098、1.78;Abl1 0.182、1.67;HER2 0.208、1.54。CK2抑制剂Ki(nM):抑制剂1 450/380,抑制剂2 35/20,抑制剂3 50/25,staurosporine 550/225,N-benzoylstaurosporine 600/275。作者认为可用于低成本激酶筛选。

传感器的构成

  • 基底/换能器电极:自制金微电极(Au microelectrode, 12.5 µm i.d.),提供电子转导与电化学检测界面。
  • 共价锚定层:N-羟基琥珀酰亚胺脂酸酯(NHS-lipoic acid ester),经硫键固定于金表面并提供琥珀酰亚胺酯用于肽偶联。
  • 识别元件:激酶特异性底物肽(CK2: RRRDDDSDDD;Abl1-T315I: STP EGIYDVP;HER2: FLT3 DNEYFYV),经EDC介导共价固定,作为磷酸化底物。
  • 封闭层:巯基聚乙二醇5000单甲基醚(PEG-thiol 5000),封闭剩余金表面,抑制非特异蛋白吸附。
  • 信号标记/辅底物:氧化还原活性辅底物Fc-ATP(adenosine 5′-[γ-ferrocene] triphosphate),激酶催化将γ-磷酸-二茂铁转移至肽残基。
  • 反应/检测介质:含Mg2+/Mn2+的激酶缓冲液(Tris-HCl、HEPES、MOPS等)及细胞裂解液;检测电解液2 M NaClO4。
  • 电化学读出:三电极体系(Ag/AgCl参比电极、Pt对电极)配合CV/SWV读取表面二茂铁氧化电流。

中文摘要

本文报道一种用于电化学测定蛋白激酶活性的多用途肽基生物传感器。该传感器以氧化还原活性辅底物腺苷5′-[γ-二茂铁]三磷酸(Fc-ATP)为核心,使激酶催化将γ-磷酸-二茂铁转移到羟基氨基酸上,从而通过电化学检测磷酸化事件。作者将该方法用于监测丝氨酸/苏氨酸激酶CK2以及酪氨酸激酶Abl1-T315I和HER2在缓冲液和细胞裂解液中的活性与抑制。通过循环伏安法和方波伏安法读取表面二茂铁化肽的氧化电流,可定量激酶活性、底物磷酸化及小分子抑制剂对蛋白磷酸化的抑制。从电化学测量中提取动力学参数,得到Km和Vmax,与文献报道一致;基于Fc信号对抑制剂浓度的依赖估算Ki,也与文献值相符。作者优化了激酶反应、Fc-ATP孵育和小分子抑制剂条件,表明肽修饰电化学生物传感器是低成本体外激酶活性与抑制剂筛选的有前景平台。

英文摘要

The kinase activities are elucidated using the novel redox-active cosubstrate adenosine 5'-[gamma-ferrocene] triphosphate (Fc-ATP), which enables the kinase-catalyzed transfer of a redox active gamma-phosphate-Fc to a hydroxyamino acid. In this report, a versatile electrochemical biosensor is developed for monitoring the activity and inhibition of a serine/threonine kinase, casein kinase 2 (CK2), and protein tyrosine kinases, Abl1-T315I and HER2, in buffered solutions and in cell lysates. The method is based on the labeling of a specific phosphorylation event with Fc, followed by electrochemical detection. The electrochemical response obtained from the "ferrocenylated" peptides enables monitoring the activity of the kinase and its substrate, as well as the inhibition of small molecule inhibitors on protein phosphorylation. Kinetic information was extracted from the electrochemical measurements for the determination of K(m) and V(m) values, which were in agreement with those previously reported. Kinase reactions were also performed in the presence of well-defined inhibitors of CK2, 4,5,6,7-tetrabromo-2-azabenzimidazole, 2-dimethylamino-4,5,6,7-tetrabromo-1H-benzimidazole, and E-3-(2,3,4,5-tetrabromophenyl)acrylic acid as well as the nonspecific kinase inhibitors, staurosporine and N-benzoylstaurosporine. On the basis of the dependency of the Fc signal on inhibitor concentration, K(i) of the inhibitors was estimated, which were also in agreement with the literature values. The performance of the biosensor was optimized including the kinase reaction, incubation with Fc-ATP, and the small molecule inhibitors. Peptide modified electrochemical biosensors are promising candidates for cost-effective in vitro kinase activity and inhibitor screening assays.

关键词

电化学生物传感器蛋白激酶Fc-ATP磷酸化小分子抑制剂细胞裂解液