On the lack of coordination between protein folding and flavin insertion in Escherichia coli for flavocytochrome b2 mutant forms Y254L and D282N
Open Access
- 1 May 1995
- journal article
- research article
- Published by Wiley in Protein Science
- Vol. 4 (5) , 925-935
- https://doi.org/10.1002/pro.5560040512
Abstract
Wild-type flavocytochrome b2 (L-lactate dehydrogenase) from Saccharotnyces cerevisiae, as well as a number of its point mutants, can be expressed to a reasonable level as recombinant proteins in Escherichia coli (20–25 mg per liter culture) with a full complement of prosthetic groups. At the same expression level, active-site mutants Y254L and D282N, on the other hand, were obtained with an FMN/heme ratio significantly less than unity, which could not be raised by addition of free FMN. Evidence is provided that the flavin deficit is due to incomplete prosthetic group incorporation during biosynthesis. Flavin-free and holo-forms for both mutants could be separated on a Blue-Trisacryl M column. The far-UV CD spectra of the two forms of each mutant protein were very similar to one another and to that of the wild-type enzyme, suggesting the existence of only local conformational differences between the active holo-enzymes and the nonreconstitutable flavin-free forms. Selective proteolysis with chymotrypsin attacked the same bond for the two mutant holo-enzymes as in the wild-type one, in the protease-sensitive loop. In contrast, for the flavin-free forms of both mutants, cleavage occurred at more than a single bond. Identification of the cleaved bonds suggested that the structural differences between the mutant flavin-free and holo-forms are located mostly at the C-terminal end of the barrel, which carries the prosthetic group and the active site. Altogether, these findings suggest that the two mutations induce an alteration of the protein-folding process during biosynthesis in E. coli; as a result, the synchrony between folding and flavin insertion is lost. Finally, a preliminary kinetic characterization of the mutant holo-forms showed the Km value for lactate to be little affected; kcat, values fell by a factor of about 70 for the D282N mutant and of more than 500 for the Y254L mutant, compared to the wild-type enzyme.Keywords
This publication has 67 references indexed in Scilit:
- The 2.6‐Å refined structure of the Escherichia coli recombinant Saccharomyces cerevisiae flavocytochrome b2‐sulfite complexProtein Science, 1994
- Role of tyrosine 143 in lactate dehydrogenation by flavocytochrome b2. Primary kinetic isotope effect studies with a phenylalanine mutantBiochemistry, 1994
- Crystal structure of apo‐glycolate oxidaseFEBS Letters, 1993
- Extreme pKa displacements at the active sites of FMN‐dependent α‐hydroxy acid‐oxidizing enzymesProtein Science, 1992
- Cloning and expression of the sarcosine oxidase gene from Bacillus sp. NS-129 in Escherichia coli.Agricultural and Biological Chemistry, 1991
- Crystallographic analysis of ribulose 1,5-bisphosphate carboxylase from spinach at 2·4 Å resolutionJournal of Molecular Biology, 1990
- Molecular structure of flavocytochrome b2 at 24 Å resolutionJournal of Molecular Biology, 1990
- A Flavin‐Mononucleotide‐Binding Site in Hansenula anomala Nicked Flavocytochrome b2, Requiring the Association of Two DomainsEuropean Journal of Biochemistry, 1980
- Binding of Cibacron Blue F3GA to Flavocytochrome b2 from Baker's YeastEuropean Journal of Biochemistry, 1978
- Controlled Proteolysis of Flavocytochrome b2European Journal of Biochemistry, 1976