Literature DB >> 23343390

Fully convergent chemical synthesis of ester insulin: determination of the high resolution X-ray structure by racemic protein crystallography.

Michal Avital-Shmilovici1, Kalyaneswar Mandal, Zachary P Gates, Nelson B Phillips, Michael A Weiss, Stephen B H Kent.   

Abstract

Efficient total synthesis of insulin is important to enable the application of medicinal chemistry to the optimization of the properties of this important protein molecule. Recently we described "ester insulin"--a novel form of insulin in which the function of the 35 residue C-peptide of proinsulin is replaced by a single covalent bond--as a key intermediate for the efficient total synthesis of insulin. Here we describe a fully convergent synthetic route to the ester insulin molecule from three unprotected peptide segments of approximately equal size. The synthetic ester insulin polypeptide chain folded much more rapidly than proinsulin, and at physiological pH. Both the D-protein and L-protein enantiomers of monomeric DKP ester insulin (i.e., [Asp(B10), Lys(B28), Pro(B29)]ester insulin) were prepared by total chemical synthesis. The atomic structure of the synthetic ester insulin molecule was determined by racemic protein X-ray crystallography to a resolution of 1.6 Å. Diffraction quality crystals were readily obtained from the racemic mixture of {D-DKP ester insulin + L-DKP ester insulin}, whereas crystals were not obtained from the L-ester insulin alone even after extensive trials. Both the D-protein and L-protein enantiomers of monomeric DKP ester insulin were assayed for receptor binding and in diabetic rats, before and after conversion by saponification to the corresponding DKP insulin enantiomers. L-DKP ester insulin bound weakly to the insulin receptor, while synthetic L-DKP insulin derived from the L-DKP ester insulin intermediate was fully active in binding to the insulin receptor. The D- and L-DKP ester insulins and D-DKP insulin were inactive in lowering blood glucose in diabetic rats, while synthetic L-DKP insulin was fully active in this biological assay. The structural basis of the lack of biological activity of ester insulin is discussed.

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Year:  2013        PMID: 23343390      PMCID: PMC3625376          DOI: 10.1021/ja311408y

Source DB:  PubMed          Journal:  J Am Chem Soc        ISSN: 0002-7863            Impact factor:   15.419


  51 in total

1.  The structure of pig and sheep insulins.

Authors:  H BROWN; F SANGER; R KITAI
Journal:  Biochem J       Date:  1955-08       Impact factor: 3.857

2.  Design and folding of [GluA4(ObetaThrB30)]insulin ("ester insulin"): a minimal proinsulin surrogate that can be chemically converted into human insulin.

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Authors:  Zhuli Wan; Bin Xu; Kun Huang; Ying-Chi Chu; Biaoru Li; Satoe H Nakagawa; Yan Qu; Shi-Quan Hu; Panayotis G Katsoyannis; Michael A Weiss
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4.  Evidence for a precursor in the biosynthesis of insulin.

Authors:  D F Steiner
Journal:  Trans N Y Acad Sci       Date:  1967-11

5.  Insulin synthesis from natural chains by means of reversible bridging compounds.

Authors:  R Geiger; R Obermeier
Journal:  Biochem Biophys Res Commun       Date:  1973-11-01       Impact factor: 3.575

6.  The effect of a non-peptide interchain crosslink on the reoxidation of reduced insulin.

Authors:  D Brandenburg; A Wollmer
Journal:  Hoppe Seylers Z Physiol Chem       Date:  1973-06

7.  Comparative reduction/oxidation studies with single chain des-(B30) insulin and porcine proinsulin.

Authors:  J Markussen
Journal:  Int J Pept Protein Res       Date:  1985-04

8.  Importance of the character and configuration of residues B24, B25, and B26 in insulin-receptor interactions.

Authors:  R G Mirmira; S H Nakagawa; H S Tager
Journal:  J Biol Chem       Date:  1991-01-25       Impact factor: 5.157

9.  Racemic crystallography of synthetic protein enantiomers used to determine the X-ray structure of plectasin by direct methods.

Authors:  Kalyaneswar Mandal; Brad L Pentelute; Valentina Tereshko; Vilasak Thammavongsa; Olaf Schneewind; Anthony A Kossiakoff; Stephen B H Kent
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Review 10.  Mirror image proteins.

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