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Structure-Based Design of a Potent Artificial Transactivation Domain Based on p53

机译:基于p53的有效人工反式激活域的结构设计

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摘要

Malfunctions in transcriptional regulation are associated with a number of critical human diseases. As a result, there is considerable interest in designing artificial transcription activators (ATAs) that specifically control genes linked to human diseases. Like native transcriptional activator proteins, an ATA must minimally contain a DNA-binding domain (DBD) and a transactivation domain (TAD) and, although there are several reliable methods for designing artificial DBDs, designing artificial TADs has proven difficult. In this manuscript, we present a structure-based strategy for designing short peptides containing natural amino acids that function as artificial TADs. Using a segment of the TAD of p53 as the scaffolding, modifications are introduced to increase the helical propensity of the peptides. The most active artificial TAD, termed E-Cap-(LL), is a 13-mer peptide that contains four key residues from p53, an N-capping motif and a dileucine hydrophobic bridge. In vitro analysis demonstrates that E-Cap-(LL) interacts with several known p53 target proteins, while in vivo studies in a yeast model system show that it is a 20-fold more potent transcriptional activator than the native p53-13 peptide. These results demonstrate that structure-based design represents a promising approach for developing artificial TADs that can be combined with artificial DBDs to create potent and specific ATAs.
机译:转录调节功能异常与许多重大人类疾病相关。结果,在设计专门控制与人类疾病相关的基因的人工转录激活剂(ATA)方面引起了极大的兴趣。像天然转录激活蛋白一样,ATA必须最少包含DNA结合结构域(DBD)和反式激活结构域(TAD),尽管已设计出几种可靠的方法来设计人工DBD,但事实证明设计人工TAD十分困难。在本手稿中,我们提出了一种基于结构的策略,用于设计含有天然氨基酸的短肽,这些天然肽具有人工TAD的功能。使用p53的TAD的一部分作为支架,引入修饰以增加肽的螺旋倾向。最具活性的人工TAD,称为E-Cap-(LL),是一种13-mer肽,包含来自p53的四个关键残基,一个N-帽基序和一个双亮氨酸疏水桥。体外分析表明E-Cap-(LL)与几种已知的p53靶蛋白相互作用,而在酵母模型系统中的体内研究表明,它是比天然p53-13肽强20倍的有效转录激活因子。这些结果表明,基于结构的设计代表了一种开发人工TAD的有前途的方法,可以将其与人工DBD结合以创建有效且特定的ATA。

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  • 来源
    《Journal of the American Chemical Society》 |2012年第3期|p.1715-1723|共9页
  • 作者单位

    Departement de Biochimie, Universite de Montreal, C.P. 6128 Succursale, Centre-Ville, Montreal, Quebec H3C 3J7, Canada;

    Institute of Biostructures and Bioimaging, CNR and Department of Biological Sciences, University of Naples 'Federico II', via Mezzocannone 16, 80134 Napoli, Italy;

    Departement de Biochimie, Universite de Montreal, C.P. 6128 Succursale, Centre-Ville, Montreal, Quebec H3C 3J7, Canada;

    Departement de Biochimie, Universite de Montreal, C.P. 6128 Succursale, Centre-Ville, Montreal, Quebec H3C 3J7, Canada;

    Institute of Biostructures and Bioimaging, CNR and Department of Biological Sciences, University of Naples 'Federico II', via Mezzocannone 16, 80134 Napoli, Italy;

    Departement de Biochimie, Universite de Montreal, C.P. 6128 Succursale, Centre-Ville, Montreal, Quebec H3C 3J7, Canada;

    Institute of Biostructures and Bioimaging, CNR and Department of Biological Sciences, University of Naples 'Federico II', via Mezzocannone 16, 80134 Napoli, Italy;

    Departement de Biochimie, Universite de Montreal, C.P. 6128 Succursale, Centre-Ville, Montreal, Quebec H3C 3J7, Canada;

    Departement de Biochimie, Universite de Montreal, C.P. 6128 Succursale, Centre-Ville, Montreal, Quebec H3C 3J7, Canada;

    Institute of Biostructures and Bioimaging, CNR and Department of Biological Sciences, University of Naples 'Federico II', via Mezzocannone 16, 80134 Napoli, Italy;

    Institute of Biostructures and Bioimaging, CNR and Department of Biological Sciences, University of Naples 'Federico II', via Mezzocannone 16, 80134 Napoli, Italy;

    Departement de Biochimie, Universite de Montreal, C.P. 6128 Succursale, Centre-Ville, Montreal, Quebec H3C 3J7, Canada;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);美国《生物学医学文摘》(MEDLINE);美国《化学文摘》(CA);
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  • 正文语种 eng
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  • 入库时间 2022-08-18 03:13:20

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