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首页> 外文期刊>Molecules >New Cysteine Protease Inhibitors Electrophilic (Het)arenes and Unexpected Prodrug Identification for the Trypanosoma Protease Rhodesain
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New Cysteine Protease Inhibitors Electrophilic (Het)arenes and Unexpected Prodrug Identification for the Trypanosoma Protease Rhodesain

机译:新的半胱氨酸蛋白酶抑制剂亲电子(HET)植物和意外的前药鉴定蛋白酶瘤蛋白酶rhodeain

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Electrophilic (het)arenes can undergo reactions with nucleophiles yielding π- or Meisenheimer (σ-) complexes or the products of the SNAr addition/elimination reactions. Such building blocks have only rarely been employed for the design of enzyme inhibitors. Herein, we demonstrate the combination of a peptidic recognition sequence with such electrophilic (het)arenes to generate highly active inhibitors of disease-relevant proteases. We further elucidate an unexpected mode of action for the trypanosomal protease rhodesain using NMR spectroscopy and mass spectrometry, enzyme kinetics and various types of simulations. After hydrolysis of an ester function in the recognition sequence of a weakly active prodrug inhibitor, the liberated carboxylic acid represents a highly potent inhibitor of rhodesain (Ki = 4.0 nM). The simulations indicate that, after the cleavage of the ester, the carboxylic acid leaves the active site and re-binds to the enzyme in an orientation that allows the formation of a very stable π-complex between the catalytic dyad (Cys-25/His-162) of rhodesain and the electrophilic aromatic moiety. The reversible inhibition mode results because the SNAr reaction, which is found in an alkaline solvent containing a low molecular weight thiol, is hindered within the enzyme due to the presence of the positively charged imidazolium ring of His-162. Comparisons between measured and calculated NMR shifts support this interpretation.
机译:电泳(HET)areenes可以与产生π-或meisenheimer(σ-)复合物的亲核试剂或SNAR加法/消除反应的产物进行反应。这种结构块仅用于设计酶抑制剂的设计。在此,我们证明了肽识别序列与这种电泳(HET)的组合,以产生疾病相关蛋白酶的高活性抑制剂。我们进一步利用NMR光谱和质谱法,酶动力学和各种类型模拟,进一步阐明促蛋白酶体蛋白酶rhodeain的意外的作用方式。在弱活性前药抑制剂的识别序列中水解酯功能之后,释放的羧酸代表了高效的罗德抑制剂(Ki = 4.0nm)。该模拟表明,在酯的切割之后,羧酸留下活性位点并以允许在催化Dyad之间形成非常稳定的π-复合物(Cys-25 / His)的取向重新结合酶。 -162)RhodeSain和亲电芳族部分。可逆抑制模式结果是因为在含有低分子量硫醇的碱性溶剂中发现的SNAR反应由于HIS-162的带正电荷的咪唑鎓环的存在而受到阻碍。测量和计算的NMR转变之间的比较支持这种解释。

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