Home LiteratureArticle Details
PMID: 12515863 Published · ppublish English Journal Article Research Support, Non-U.S. Gov't Research Support, U.S. Gov't, P.H.S.

Visualization of coupled protein folding and binding in bacteria and purification of the heterodimeric complex.

Wang H, Chong S

Abstract

During overexpression of recombinant proteins in Escherichia coli, misfolded proteins often aggregate and form inclusion bodies. If an aggregation-prone recombinant protein is fused upstream (as an N-terminal fusion) to GFP, aggregation of the recombinant protein domain also leads to misfolding of the downstream GFP domain, resulting in a decrease or loss of fluorescence. We investigated whether the GFP domain could fold correctly if aggregation of the upstream protein domain was prevented in vivo by a coupled protein folding and binding interaction. Such interaction has been previously shown to occur between the E. coli integration host factors alpha and beta, and between the domains of the general transcriptional coactivator cAMP response element binding protein (CREB)-binding protein and the activator for thyroid hormone and retinoid receptors. In this study, fusion of integration host factor beta or the CREB-binding protein domain upstream to GFP resulted in aggregation of the fusion protein. Coexpression of their respective partners, on the other hand, allowed soluble expression of the fusion protein and a dramatic increase in fluorescence. The study demonstrated that coupled protein folding and binding could be correlated to GFP fluorescence. A modified miniintein containing an affinity tag was inserted between the upstream protein domain and GFP to allow rapid purification and identification of the heterodimeric complex. The GFP coexpression fusion system may be used to identify novel protein-protein interactions that involve coupled folding and binding or protein partners that can solubilize aggregation-prone recombinant proteins.

MeSH Terms
Carrier Proteins/chemistry Dimerization Escherichia coli/genetics Escherichia coli Proteins/chemistry Fluorescence Green Fluorescent Proteins Integration Host Factors/chemistry Luminescent Proteins/chemistry Protein Folding Recombinant Fusion Proteins/chemistry
Chemicals
Carrier Proteins Escherichia coli Proteins Integration Host Factors Luminescent Proteins Recombinant Fusion Proteins citrate-binding transport protein integration host factor, E coli Green Fluorescent Proteins
Authors & Affiliations
2 authors, click to expand affiliations / ORCID
Wang Haoyong
New England Biolabs, Inc., 32 Tozer Road, Beverly, MA 01915, USA.
Chong Shaorong
References (16)
16 references, click to expand
  1. Why are "natively unfolded" proteins unstructured under physiologic conditions?
    Proteins. 2000 Nov 15;41(3):415-27 PMID: 11025552
  2. Rapid protein-folding assay using green fluorescent protein.
    Nat Biotechnol. 1999 Jul;17(7):691-5 PMID: 10404163
  3. Imaging into the future: visualizing gene expression and protein interactions with fluorescent proteins.
    Nat Cell Biol. 2002 Jan;4(1):E15-20 PMID: 11780139
  4. Mutual synergistic folding in recruitment of CBP/p300 by p160 nuclear receptor coactivators.
    Nature. 2002 Jan 31;415(6871):549-53 PMID: 11823864
  5. Coupling of folding and binding for unstructured proteins.
    Curr Opin Struct Biol. 2002 Feb;12(1):54-60 PMID: 11839490
  6. Purification and properties of the Escherichia coli protein factor required for lambda integrative recombination.
    J Biol Chem. 1981 Sep 10;256(17):9246-53 PMID: 6267068
  7. Electrostatic lock-and-key model for the study of biological isosterism: role of structural water in the binding of basic pancreatic trypsin inhibitor to beta-trypsin.
    Enzyme. 1986;36(1-2):44-53 PMID: 2431896
  8. The purification of eukaryotic polypeptides synthesized in Escherichia coli.
    Biochem J. 1986 Nov 15;240(1):1-12 PMID: 3548705
  9. Overproduction of Escherichia coli integration host factor, a protein with nonidentical subunits.
    J Bacteriol. 1987 Sep;169(9):4124-7 PMID: 3305480
  10. Formation of aggregates from a thermolabile in vivo folding intermediate in P22 tailspike maturation. A model for inclusion body formation.
    J Biol Chem. 1988 Apr 5;263(10):4977-83 PMID: 2965152
  11. Chemical structure of the hexapeptide chromophore of the Aequorea green-fluorescent protein.
    Biochemistry. 1993 Feb 9;32(5):1212-8 PMID: 8448132
  12. Mutations and off-pathway aggregation of proteins.
    Trends Biotechnol. 1994 May;12(5):193-8 PMID: 7764903
  13. Wavelength mutations and posttranslational autoxidation of green fluorescent protein.
    Proc Natl Acad Sci U S A. 1994 Dec 20;91(26):12501-4 PMID: 7809066
  14. Chromophore formation in green fluorescent protein.
    Biochemistry. 1997 Jun 3;36(22):6786-91 PMID: 9184161
  15. Improved green fluorescent protein by molecular evolution using DNA shuffling.
    Nat Biotechnol. 1996 Mar;14(3):315-9 PMID: 9630892
  16. Construction of a mini-intein fusion system to allow both direct monitoring of soluble protein expression and rapid purification of target proteins.
    Gene. 2001 Sep 19;275(2):241-52 PMID: 11587851
Article Info
Journal
Proceedings of the National Academy of Sciences of the United States of America
Abbr.
Proc Natl Acad Sci U S A
ISSN
0027-8424
Published
2003-01-21
Epub
2003-00-06
Pages
478-83
Language
English
Region
United States
NLM ID
7505876
PMCID
PMC141020
Subset
IM
Grants
NIGMS NIH HHS · GM 57734 · United States
Analysis Services
Analysis Services

Contact

No. 2 Wenbo Road, Zhangqiu District, Jinan, Shandong

Qilu Normal University · Genelibs Bioinformatics Lab

750 Shunhua Rd, Jinan

2F, Bldg F, University Science Park

Tel: 0531-88819269

WeChat Official Account

Follow our WeChat subscription account for real-time updates and the latest in medical and biological research.


Business Email

E-mail: product@genelibs.com