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Insulin in Motion: The A6-A11 Disulfide Bond Allosterically Modulates Structural Transitions Required for Insulin Activity

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Journal Sci Rep
Specialty Science
Date 2017 Dec 10
PMID 29222417
Citations 16
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Abstract

The structural transitions required for insulin to activate its receptor and initiate regulation of glucose homeostasis are only partly understood. Here, using ring-closing metathesis, we substitute the A6-A11 disulfide bond of insulin with a rigid, non-reducible dicarba linkage, yielding two distinct stereo-isomers (cis and trans). Remarkably, only the cis isomer displays full insulin potency, rapidly lowering blood glucose in mice (even under insulin-resistant conditions). It also posseses reduced mitogenic activity in vitro. Further biophysical, crystallographic and molecular-dynamics analyses reveal that the A6-A11 bond configuration directly affects the conformational flexibility of insulin A-chain N-terminal helix, dictating insulin's ability to engage its receptor. We reveal that in native insulin, contraction of the C-C distance of the flexible A6-A11 cystine allows the A-chain N-terminal helix to unwind to a conformation that allows receptor engagement. This motion is also permitted in the cis isomer, with its shorter C-C distance, but prevented in the extended trans analogue. These findings thus illuminate for the first time the allosteric role of the A6-A11 bond in mediating the transition of the hormone to an active conformation, significantly advancing our understanding of insulin action and opening up new avenues for the design of improved therapeutic analogues.

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References
1.
Hossain M, Haugaard-Kedstrom L, Rosengren K, Bathgate R, Wade J . Chemically synthesized dicarba H2 relaxin analogues retain strong RXFP1 receptor activity but show an unexpected loss of in vitro serum stability. Org Biomol Chem. 2015; 13(44):10895-903. DOI: 10.1039/c5ob01539a. View

2.
Brange J, Andersen L, Laursen E, Meyn G, Rasmussen E . Toward understanding insulin fibrillation. J Pharm Sci. 1997; 86(5):517-25. DOI: 10.1021/js960297s. View

3.
Stymiest J, Mitchell B, Wong S, Vederas J . Synthesis of biologically active dicarba analogues of the peptide hormone oxytocin using ring-closing metathesis. Org Lett. 2003; 5(1):47-9. DOI: 10.1021/ol027160v. View

4.
Sell C, Dumenil G, Deveaud C, Miura M, Coppola D, DeAngelis T . Effect of a null mutation of the insulin-like growth factor I receptor gene on growth and transformation of mouse embryo fibroblasts. Mol Cell Biol. 1994; 14(6):3604-12. PMC: 358728. DOI: 10.1128/mcb.14.6.3604-3612.1994. View

5.
Gleeson E, Wang Z, Robinson S, Chhabra S, MacRaild C, Jackson W . Stereoselective synthesis and structural elucidation of dicarba peptides. Chem Commun (Camb). 2016; 52(24):4446-9. DOI: 10.1039/c5cc10540d. View