首页> 外文期刊>Journal of Medicinal Chemistry >Synthesis and evaluation of peptidomimetics as selective inhibitors and active site probes of nitric oxide synthases.
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Synthesis and evaluation of peptidomimetics as selective inhibitors and active site probes of nitric oxide synthases.

机译:拟肽作为一氧化氮合酶的选择性抑制剂和活性位点探针的合成和评估。

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Nitric oxide synthase (NOS) catalyzes the conversion of L-arginine to L-citrulline and nitric oxide (NO). Selective inhibition of the isoforms of NOS could have great therapeutic potential in the treatment of certain disease states arising from pathologically elevated synthesis of NO. Recently, we reported dipeptide amides containing a basic amine side chain as potent and selective inhibitors of neuronal NOS (Huang, H.; Martasek, P.; Roman, L. J.; Masters, B. S. S.; Silverman, R. B. J. Med. Chem. 1999, 42, 3147). The most potent nNOS inhibitor among these compounds is L-ArgNO2-L-Dbu-NH2 (1) (Ki = 130 nM), which also exhibits the highest selectivity over eNOS (>1,500-fold) with excellent selectivity over iNOS (190-fold). Here we describe the design and synthesis of a series of peptidomimetic analogues of this dipeptide as potential selective inhibitors of nNOS. The biochemical evaluation of these compounds also revealed the binding requirements of the dipeptide inhibitors with NOS. Incorporation of protecting groups at the N-terminus of the dipeptide amide 1 (compounds 4 and 5) resulted in dramatic decreases in the inhibitory potency of nNOS. Masking the NH group of the peptide bond (peptoids 6-8 and N-methylated compounds 9-11) also gave much poorer nNOS inhibitors than 1. Both of the results demonstrate the importance of the alpha-amine of the dipeptide and the NH moiety of the peptide bond for binding at the active site. Modifications at the C-terminus of the peptide included converting the amide to the methyl ester (12), tert-butyl ester (13), and carboxylic acid (14) and also descarboxamide analogues (15-17), which revealed less restricted binding requirements for the C-terminus of the dipeptide. Further optimization should be possible when we learn more about the binding requirements at the active sites of NOSs.
机译:一氧化氮合酶(NOS)催化L-精氨酸向L-瓜氨酸和一氧化氮(NO)的转化。 NOS同工型的选择性抑制在病理上升高的NO合成引起的某些疾病状态的治疗中可能具有巨大的治疗潜力。最近,我们报道了含有碱性胺侧链的二肽酰胺作为神经元NOS的有效和选择性抑制剂(Huang,H .; Martasek,P .; Roman,LJ; Masters,BSS; Silverman,RBJ Med。Chem。1999,42, 3147)。在这些化合物中,最有效的nNOS抑制剂是L-ArgNO2-L-Dbu-NH2(1)(Ki = 130 nM),它在eNOS上的选择性最高(> 1,500倍),在iNOS(190-折)。在这里,我们描述了该二肽的一系列拟肽类似物作为nNOS的潜在选择性抑制剂的设计和合成。这些化合物的生化评估还揭示了二肽抑制剂与NOS的结合要求。在二肽酰胺1(化合物4和5)的N末端掺入保护基团导致nNOS的抑制效力显着降低。掩盖肽键的NH基团(类肽6-8和N-甲基化的化合物9-11)也比1提供了更差的nNOS抑制剂。这两个结果都证明了二肽的α-胺和NH部分的重要性肽键的结合在活性位点的结合。肽C末端的修饰包括将酰胺转化为甲酯(12),叔丁酯(13)和羧酸(14)以及十碳酰胺类似物(15-17),这显示出较少的受限结合二肽C末端的要求。当我们更多地了解NOS活性位点的结合要求时,应该有可能进一步优化。

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