Redesigning secondary structure to invert coenzyme specificity in isopropylmalate dehydrogenase.
- 29 October 1996
- journal article
- research article
- Published by Proceedings of the National Academy of Sciences in Proceedings of the National Academy of Sciences
- Vol. 93 (22), 12171-12176
- https://doi.org/10.1073/pnas.93.22.12171
Abstract
Rational engineering of enzymes involves introducing key amino acids guided by a knowledge of protein structure to effect a desirable change in function. To date, all successful attempts to change specificity have been limited to substituting individual amino acids within a protein fold. However, the infant field of protein engineering will only reach maturity when changes in function can be generated by rationally engineering secondary structures. Guided by x-ray crystal structures and molecular modeling, site-directed mutagenesis has been used to systematically invert the coenzyme specificity of Thermus thermophilus isopropylmalate dehydrogenase from a 100-fold preference for NAD to a 1000-fold preference for NADP. The engineered mutant, which is twice as active as wild type, contains four amino acid substitutions and an alpha-helix and loop that replaces the original beta-turn. These results demonstrate that rational engineering of secondary structures to produce enzymes with novel properties is feasible.Keywords
This publication has 30 references indexed in Scilit:
- The role of glutamate 87 in the kinetic mechanism ofThermus thermophilusisopropylmalate dehydrogenaseProtein Science, 1995
- Mutagenesis and Laue Structures of Enzyme Intermediates: Isocitrate DehydrogenaseScience, 1995
- Hydrophobic interaction at the subunit interface contributes to the thermostability of 3‐isopropylmalate dehydrogenase from an extreme thermophile, Thermus thermophilusEuropean Journal of Biochemistry, 1994
- Kinetic mechanism of Escherichia coli isocitrate dehydrogenaseBiochemistry, 1993
- Creation of an NADP-dependent pyruvate dehydrogenase multienzyme complex by protein engineeringBiochemistry, 1993
- Three-dimensional structure of a highly thermostable enzyme, 3-isopropylmalate dehydrogenase of Thermus thermophilus at 2.2 Å resolutionJournal of Molecular Biology, 1991
- Catalytic mechanism of NADP+-dependent isocitrate dehydrogenase: implications from the structures of magnesium-isocitrate and NADP+ complexesBiochemistry, 1991
- Engineering hybrid genes without the use of restriction enzymes: gene splicing by overlap extensionGene, 1989
- Molecular Cloning and Nucleotide Sequence of the 3-Isopropylmalate Dehydrogenase Gene of Candida UtilisMicrobiology, 1987
- Chemical and biological evolution of a nucleotide-binding proteinNature, 1974