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胰高血糖素的多位点替代类似物。拮抗剂设计的分子基础。

Multiple-site replacement analogs of glucagon. A molecular basis for antagonist design.

作者信息

Unson C G, Wu C R, Fitzpatrick K J, Merrifield R B

机构信息

Rockefeller University, New York, New York 10021.

出版信息

J Biol Chem. 1994 Apr 29;269(17):12548-51.

PMID:8175663
Abstract

Extensive structure activity analysis has allowed us to identify specific residues in the glucagon sequence that are responsible for either receptor recognition or signal transduction. For instance, we have demonstrated that aspartic acid 9 and histidine 1 are essential for activation, and that an ionic interaction between the negative carboxylate and the protonated imidazole may contribute to the activation reaction at the molecular level. In the absence of the carboxylic group at position 9, aspartic 21 or aspartic 15 might furnish distal electrostatic effects to maintain partial agonism. Further investigation established that each of the 4 serine residues in the hormone play distinct roles. Serine 8 provides an important determinant of binding. Whereas neither serines 2, 11, nor 16 are required for receptor recognition. We have shown that serine 16 is essential for signal transduction and thus have identified it to be the third residue in glucagon to participate in a putative catalytic triad together with aspartic 9 and histidine 1, in the transduction of the glucagon response. In this work, we utilized insights into the functional significance of particular residues in the peptide appropriated from our structure-function assignments, as the basis of a molecular approach for the design of active-site directed antagonists of glucagon. The importance as well as the accuracy of our findings are confirmed by the synthesis of a series of improved glucagon antagonists based on replacements at positions 1, 9, 11, 16, and 21. The inhibition index, (I/A)50, of our best antagonist des-His1-[Nle9-Ala11-Ala16]glucagon amide, has been improved 10-fold over the previous best glucagon inhibitor.

摘要

广泛的结构活性分析使我们能够确定胰高血糖素序列中负责受体识别或信号转导的特定残基。例如,我们已经证明天冬氨酸9和组氨酸1对激活至关重要,并且负羧酸盐与质子化咪唑之间的离子相互作用可能在分子水平上促进激活反应。在9位没有羧基的情况下,天冬氨酸21或天冬氨酸15可能提供远端静电效应以维持部分激动作用。进一步的研究表明,激素中的4个丝氨酸残基各自发挥着不同的作用。丝氨酸8是结合的重要决定因素。而丝氨酸2、11和16对于受体识别并非必需。我们已经表明丝氨酸16对于信号转导至关重要,因此确定它是胰高血糖素中与天冬氨酸9和组氨酸1一起参与假定催化三联体的第三个残基,参与胰高血糖素反应的转导。在这项工作中,我们利用从结构 - 功能分配中获得的关于肽中特定残基功能意义的见解,作为设计胰高血糖素活性位点定向拮抗剂的分子方法的基础。基于在1、9、11、16和21位的取代合成的一系列改进的胰高血糖素拮抗剂证实了我们发现的重要性和准确性。我们最好的拮抗剂去组氨酸1 - [Nle9 - Ala11 - Ala16]胰高血糖素酰胺的抑制指数(I/A)50比之前最好的胰高血糖素抑制剂提高了10倍。

相似文献

1
Multiple-site replacement analogs of glucagon. A molecular basis for antagonist design.胰高血糖素的多位点替代类似物。拮抗剂设计的分子基础。
J Biol Chem. 1994 Apr 29;269(17):12548-51.
2
Identification of an essential serine residue in glucagon: implication for an active site triad.胰高血糖素中一个必需丝氨酸残基的鉴定:对活性位点三联体的启示。
Proc Natl Acad Sci U S A. 1994 Jan 18;91(2):454-8. doi: 10.1073/pnas.91.2.454.
3
Roles of aspartic acid 15 and 21 in glucagon action: receptor anchor and surrogates for aspartic acid 9.天冬氨酸15和21在胰高血糖素作用中的作用:受体锚定以及天冬氨酸9的替代物
Biochemistry. 1994 Jun 7;33(22):6884-7. doi: 10.1021/bi00188a018.
4
The role of histidine-1 in glucagon action.
Arch Biochem Biophys. 1993 Feb 1;300(2):747-50. doi: 10.1006/abbi.1993.1103.
5
The role of phenylalanine at position 6 in glucagon's mechanism of biological action: multiple replacement analogues of glucagon.苯丙氨酸在胰高血糖素生物作用机制中第6位的作用:胰高血糖素的多位点取代类似物
J Med Chem. 1997 Aug 1;40(16):2555-62. doi: 10.1021/jm960800d.
6
Structure-activity studies of hydrophobic amino acid replacements at positions 9, 11 and 16 of glucagon.胰高血糖素9、11和16位疏水性氨基酸替代的构效关系研究。
J Pept Res. 1997 Apr;49(4):293-9. doi: 10.1111/j.1399-3011.1997.tb01129.x.
7
Topographical amino acid substitution in position 10 of glucagon leads to antagonists/partial agonists with greater binding differences.胰高血糖素第10位的氨基酸发生拓扑学取代会产生具有更大结合差异的拮抗剂/部分激动剂。
J Med Chem. 1996 Jun 21;39(13):2449-55. doi: 10.1021/jm960130b.
8
Synthetic linear and cyclic glucagon antagonists.
Int J Pept Protein Res. 1993 Jul;42(1):68-77. doi: 10.1111/j.1399-3011.1993.tb00352.x.
9
Position 9 replacement analogs of glucagon uncouple biological activity and receptor binding.
J Biol Chem. 1991 Feb 15;266(5):2763-6.
10
Activation of the hepatic glycine cleavage enzyme system by glucagon and glucagon-related peptides.胰高血糖素和胰高血糖素相关肽对肝脏甘氨酸裂解酶系统的激活作用。
Can J Physiol Pharmacol. 1997 Sep;75(9):1096-100.

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Int J Biol Sci. 2016 Dec 6;12(12):1544-1554. doi: 10.7150/ijbs.16612. eCollection 2016.
2
Conformational states of the full-length glucagon receptor.全长胰高血糖素受体的构象状态
Nat Commun. 2015 Jul 31;6:7859. doi: 10.1038/ncomms8859.
3
Peptide lipidation stabilizes structure to enhance biological function.肽脂质化稳定结构以增强生物功能。
Mol Metab. 2013 Sep 5;2(4):468-79. doi: 10.1016/j.molmet.2013.08.008. eCollection 2013.
4
Antibodies against specific extracellular epitopes of the glucagon receptor block glucagon binding.针对胰高血糖素受体特定细胞外表位的抗体可阻断胰高血糖素的结合。
Proc Natl Acad Sci U S A. 1996 Jan 9;93(1):310-5. doi: 10.1073/pnas.93.1.310.