Literature DB >> 8679542

Covalent reinforcement of a fragile region in the dimeric enzyme thymidylate synthase stabilizes the protein against chaotrope-induced unfolding.

R S Gokhale1, S Agarwalla, D V Santi, P Balaram.   

Abstract

Urea and guanidinium chloride induced unfolding of thymidylate synthase, a dimeric enzyme, and engineered interface mutants have been monitored by circular dichroism, fluorescence, and size-exclusion chromatography. Equilibrium unfolding studies show biphasic transitions, with a plateau between 3.5 and 5 M urea, when monitored by far-UV CD and fluorescence energy transfer employing an (aminoethylamino) naphthalenesulfonyl (AEDANS) label at the active site residue, Cys198. AEDANS was also specifically incorporated at position Cys155 in the mutant protein T155C. Direct excitation of this extrinsic fluorophore in the wild type protein (labeled at Cys198) and mutant T155C (labeled at Cys155) showed remarkable differences in the unfolding profiles. C155 AEDANS has a transition centered at 3.5 M urea, which is in contrast to Cys 198 AEDANS (5.5 M urea). Unfolding studies monitored by following intrinsic fluorescence of Trp residues which are located in a small structural domain suggest that this region of the protein is intrinsically fragile. The stable equilibrium intermediate is identified to be an ensemble of partially unfolded aggregated species by gel filtration studies. The chaotrope-induced denaturation of TS appears to proceed through a partially unfolded intermediate that is stabilized by aggregation. Dissociation and loss of structure occur concomitantly at high denaturant concentrations. Introduction of two symmetrically positioned disulfide bridges across the dimer interface in the triple mutant T155C/E188C/C244T (TSMox) stabilized the protein against denaturant-induced unfolding. Aggregate formation was completely abolished in the mutant TSMox, which also enhanced the overall structural stability of the protein. Structural reinforcement of the fragile interface in thymidylate synthase results in dramatic stabilization toward chaotrope-induced unfolding.

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Year:  1996        PMID: 8679542     DOI: 10.1021/bi952890e

Source DB:  PubMed          Journal:  Biochemistry        ISSN: 0006-2960            Impact factor:   3.162


  4 in total

1.  Disulfide engineering at the dimer interface of Lactobacillus casei thymidylate synthase: crystal structure of the T155C/E188C/C244T mutant.

Authors:  S S Velanker; R S Gokhale; S S Ray; B Gopal; S Parthasarathy; D V Santi; P Balaram; M R Murthy
Journal:  Protein Sci       Date:  1999-04       Impact factor: 6.725

2.  Dimer-monomer equilibrium of human thymidylate synthase monitored by fluorescence resonance energy transfer.

Authors:  Filippo Genovese; Stefania Ferrari; Giambattista Guaitoli; Monica Caselli; M Paola Costi; Glauco Ponterini
Journal:  Protein Sci       Date:  2010-05       Impact factor: 6.725

3.  A decision tree model for the prediction of homodimer folding mechanism.

Authors:  Abishek Suresh; Velmurugan Karthikraja; Sajitha Lulu; Uma Kangueane; Pandjassarame Kangueane
Journal:  Bioinformation       Date:  2009-11-17

4.  Evidence for a role of the polysaccharide capsule transport proteins in pertussis pathogenesis.

Authors:  Regina Hoo; Jian Hang Lam; Ludovic Huot; Aakanksha Pant; Rui Li; David Hot; Sylvie Alonso
Journal:  PLoS One       Date:  2014-12-12       Impact factor: 3.240

  4 in total

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