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In Situ Monitoring of p53 Protein and MDM2 Protein Interaction in Single Living Cells Using Single-Molecule Fluorescence Spectroscopy

机译:使用单分子荧光光谱法在单分子荧光光谱中的单分子荧光谱中P53蛋白和MDM2蛋白质相互作用的原位监测

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摘要

Protein–protein interactions play a central role in signal transduction, transcription regulations, enzymatic activity, and protein synthesis. The p53 protein is a key transcription factor, and its activity is precisely regulated by the p53–MDM2 interaction. Although the p53–MDM2 interaction has been studied, it is still not clear how p53 structures and external factors influence the p53–MDM2 interaction in living cells. Here, we developed a direct method for monitoring the p53–MDM2 interaction in single living cells using single-molecule fluorescence cross-correlation spectroscopy with a microfluidic chip. First, we labeled p53 and MDM2 proteins with enhanced green fluorescent protein (EGFP) and mCherry, respectively, using lentivirus infection. We then designed various mutants covering the three main domains of p53 (tetramerization, transactivation, and DNA-binding domains) and systematically studied effects of p53 protein primary, secondary, and quaternary structures on p53–MDM2 binding affinity in single living cells. We found that p53 dimers and tetramers can bind to MDM2, that the binding affinity of p53 tetramers is higher than that of p53 dimers, and that the affinity is closely correlated to the helicity of the p53 transactivation domain. The hot-spot mutation R175H in the DNA-binding domain reduced the binding of p53 to MDM2. Finally, we studied effects of inhibitors on p53–MDM2 interactions and dissociation dynamics of p53–MDM2 complexes in single living cells. We found that inhibitors Nutlin 3α and MI773 efficiently inhibited the p53–MDM2 interaction, but RITA did not work in living cells. This study provides a direct way for quantifying the relationship between protein structure and protein–protein interactions and evaluation of inhibitors in living cells.
机译:蛋白质 - 蛋白质相互作用在信号转导,转录规则,酶活性和蛋白质合成中起着核心作用。 P53蛋白是关键转录因子,其活性由P53-MDM2相互作用精确调节。虽然已经研究了P53-MDM2相互作用,但尚不清楚P53结构和外部因素如何影响活细胞中的P53-MDM2相互作用。在这里,我们开发了一种直接方法,用于使用单分子荧光互相关光谱与微流体芯片在单一活细胞中监测P53-MDM2相互作用。首先,我们使用Lentivirus感染分别用增强的绿色荧光蛋白(EGFP)和MCHERRY标记P53和MDM2蛋白质。然后,我们设计了覆盖P53(四聚化,转移和DNA结合结构域的三个主结构域的各种突变体,并系统地研究了P53-MDM2在单一活细胞中P53-MDM2结合亲和力的影响。我们发现P53二聚体和四聚体可以结合MDM2,所以P53四聚体的结合亲和力高于P53二聚体的结合亲和力,并且亲和力与P53转移结构域的螺旋紧密相关。 DNA结合结构域中的热点突变R175H降低了P53至MDM2的结合。最后,我们研究了抑制剂对单一活细胞P53-MDM2复合物P53-MDM2相互作用和解离动力学的影响。我们发现抑制剂Nutlin3α和Mi773有效地抑制p53-MDM2相互作用,但丽塔在活细胞中不起作用。该研究提供了一种直接方法,用于量化蛋白质结构与蛋白质 - 蛋白质 - 蛋白质相互作用和活细胞抑制剂的评价之间的关系。

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  • 来源
    《Analytical chemistry》 |2018年第10期|共8页
  • 作者单位

    State Key Laboratory of Metal Matrix Composites School of Chemistry and Chemical Engineering State Key Laboratory of Microbial Metabolism School of Life Sciences and Biotechnology and Key Laboratory of Systems Biomedicine (Ministry of Education) Shan;

    State Key Laboratory of Metal Matrix Composites School of Chemistry and Chemical Engineering State Key Laboratory of Microbial Metabolism School of Life Sciences and Biotechnology and Key Laboratory of Systems Biomedicine (Ministry of Education) Shan;

    State Key Laboratory of Metal Matrix Composites School of Chemistry and Chemical Engineering State Key Laboratory of Microbial Metabolism School of Life Sciences and Biotechnology and Key Laboratory of Systems Biomedicine (Ministry of Education) Shan;

    State Key Laboratory of Metal Matrix Composites School of Chemistry and Chemical Engineering State Key Laboratory of Microbial Metabolism School of Life Sciences and Biotechnology and Key Laboratory of Systems Biomedicine (Ministry of Education) Shan;

    State Key Laboratory of Metal Matrix Composites School of Chemistry and Chemical Engineering State Key Laboratory of Microbial Metabolism School of Life Sciences and Biotechnology and Key Laboratory of Systems Biomedicine (Ministry of Education) Shan;

    State Key Laboratory of Metal Matrix Composites School of Chemistry and Chemical Engineering State Key Laboratory of Microbial Metabolism School of Life Sciences and Biotechnology and Key Laboratory of Systems Biomedicine (Ministry of Education) Shan;

    Experimental Biomolecular Physics Department of Applied Physics Royal Institute of Technology Stockholm 106 91 Sweden;

    Experimental Biomolecular Physics Department of Applied Physics Royal Institute of Technology Stockholm 106 91 Sweden;

    State Key Laboratory of Metal Matrix Composites School of Chemistry and Chemical Engineering State Key Laboratory of Microbial Metabolism School of Life Sciences and Biotechnology and Key Laboratory of Systems Biomedicine (Ministry of Education) Shan;

    State Key Laboratory of Metal Matrix Composites School of Chemistry and Chemical Engineering State Key Laboratory of Microbial Metabolism School of Life Sciences and Biotechnology and Key Laboratory of Systems Biomedicine (Ministry of Education) Shan;

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  • 正文语种 eng
  • 中图分类 分析化学;
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