1SJU | pdb_00001sju

MINI-PROINSULIN, SINGLE CHAIN INSULIN ANALOG MUTANT: DES B30, HIS(B 10)ASP, PRO(B 28)ASP AND PEPTIDE BOND BETWEEN LYS B 29 AND GLY A 1, NMR, 20 STRUCTURES


Experimental Data Snapshot

  • Method:&nbspSOLUTION NMR
  • Conformers Submitted:&nbsp20&nbsp

wwPDB Validation&nbsp &nbsp3D Report&nbspFull Report


This is version 1.4 of the entry. See complete&nbsphistory.&nbsp


Literature

Mini-proinsulin and mini-IGF-I: homologous protein sequences encoding non-homologous structures.

Hua, Q.X.,&nbspHu, S.Q.,&nbspJia, W.,&nbspChu, Y.C.,&nbspBurke, G.T.,&nbspWang, S.H.,&nbspWang, R.Y.,&nbspKatsoyannis, P.G.,&nbspWeiss, M.A.

(1998) J Mol Biology&nbsp277: 103-118

  • DOI:&nbsphttps://doi.org/10.1006/jmbi.1997.1574
  • Primary Citation of Related Structures: &nbsp
    1SJT, 1SJU

  • PubMed Abstract:&nbsp

    Protein minimization highlights essential determinants of structure and function. Minimal models of proinsulin and insulin-like growth factor I contain homologous A and B domains as single-chain analogues. Such models (designated mini-proinsulin and mini-IGF-I) have attracted wide interest due to their native foldability but complete absence of biological activity. The crystal structure of mini-proinsulin, determined as a T3R3 hexamer, is similar to that of the native insulin hexamer. Here, we describe the solution structure of a monomeric mini-proinsulin under physiologic conditions and compare this structure to that of the corresponding two-chain analogue. The two proteins each contain substitutions in the B-chain (HisB10-->Asp and ProB28-->Asp) designed to destabilize self-association by electrostatic repulsion; the proteins differ by the presence or absence of a peptide bond between LysB29 and GlyA1. The structures are essentially identical, resembling in each case the T-state crystallographic protomer. Differences are observed near the site of cross-linking: the adjoining A1-A8 alpha-helix (variable among crystal structures) is less well-ordered in mini-proinsulin than in the two-chain variant. The single-chain analogue is not completely inactive: its affinity for the insulin receptor is 1500-fold lower than that of the two-chain analogue. Moreover, at saturating concentrations mini-proinsulin retains the ability to stimulate lipogenesis in adipocytes (native biological potency). These results suggest that a change in the conformation of insulin, as tethered by the B29-A1 peptide bond, optimizes affinity but is not integral to the mechanism of transmembrane signaling. Surprisingly, the tertiary structure of mini-proinsulin differs from that of mini-IGF-I (main-chain rms deviation 4.5 A) despite strict conservation of non-polar residues in their respective hydrophobic cores (side-chain rms deviation 4.9 A). Three-dimensional profile scores suggest that the two structures each provide acceptable templates for threading of insulin-like sequences. Mini-proinsulin and mini-IGF-I thus provide examples of homologous protein sequences encoding non-homologous structures.


  • Organizational Affiliation:&nbsp

    Center for Molecular Oncology and Department of Biochemistry and Molecular Biology, The University of Chicago, Chicago, IL 60637, USA.


Macromolecules
Find similar proteins by:  (by identity cutoff)  |  3D Structure
Entity ID: 1
MoleculeChains Sequence LengthOrganismDetailsImage
PROINSULIN50Homo sapiensMutation(s): 2&nbsp
UniProt & NIH Common Fund Data Resources
Find proteins for&nbspP01308&nbsp(Homo sapiens)
Explore&nbspP01308&nbsp
Go to UniProtKB: &nbspP01308
PHAROS: &nbspP01308
GTEx: &nbspENSG00000254647&nbsp
Entity Groups &nbsp
Sequence Clusters30% Identity50% Identity70% Identity90% Identity95% Identity100% Identity
UniProt GroupP01308
Sequence Annotations
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  • Reference Sequence
Experimental Data & Validation

Experimental Data

  • Method:&nbspSOLUTION NMR
  • Conformers Submitted:&nbsp20&nbsp

Structure Validation

View&nbspFull Validation Report



Entry History&nbsp

Deposition Data

Revision History  (Full details and data files)

  • Version 1.0: 1998-03-18
    Type: Initial release
  • Version 1.1: 2008-03-24
    Changes: Version format compliance
  • Version 1.2: 2011-07-13
    Changes: Version format compliance
  • Version 1.3: 2021-11-03
    Changes: Database references, Derived calculations, Other
  • Version 1.4: 2024-10-16
    Changes: Data collection, Structure summary