A glutamine 67--> histidine mutation in homotetrameric R67 dihydrofolate reductase results in four mutations per

H Park1, T D Bradrick, E E Howell

  • 1Biochemistry, Cell and Molecular Biology Department, University of Tennessee, Knoxville 37996-0840, USA.

Protein Engineering
|May 23, 1998
PubMed

Insights

Mutating glutamine 67 in R67 dihydrofolate reductase (DHFR) enhances ligand binding but causes inhibition. This highlights a trade-off between binding affinity and catalytic efficiency in bacterial DHFR drug resistance.

Area of Science:

  • Biochemistry
  • Enzymology
  • Structural Biology

Background:

  • R67 dihydrofolate reductase (DHFR) is a bacterial enzyme conferring resistance to trimethoprim.
  • Unlike chromosomal DHFRs, R67 DHFR possesses unique sequence and structural properties.
  • Its homotetrameric structure features a central active site pore for ligand binding.

Purpose of the Study:

  • To investigate the role of glutamine 67 (Q67) and its symmetry-related residues in R67 DHFR function.
  • To analyze the impact of a Q67H mutation on dihydrofolate (DHF) and NADPH binding affinities and cooperativity.

Main Methods:

  • Site-directed mutagenesis to create the Q67H mutant of R67 DHFR.
  • Isothermal titration calorimetry (ITC) to measure binary binding of DHF and NADPH.
  • Catalytic assays to assess substrate and cofactor inhibition.

Main Results:

  • The Q67H mutation significantly increased binding affinity for both DHF and NADPH (80-6000-fold).
  • DHF binding in the Q67H mutant lost positive cooperativity observed in wild-type R67 DHFR.
  • Catalysis in the Q67H mutant showed substantial substrate and cofactor inhibition, suggesting non-productive binding.

Conclusions:

  • The Q67H mutation alters ligand binding dynamics within the R67 DHFR active site pore.
  • Enhanced ligand binding in the mutant leads to inhibition, likely due to symmetrical site occupancy.
  • The balance between ligand affinity and symmetrical binding inhibition limits beneficial mutations in R67 DHFR evolution.

Related Concept Videos

Mutations01:39

Mutations

Overview
Translation01:31

Translation

Lesson: Translation
Translation is the process of synthesizing proteins from the genetic information carried by messenger RNA (mRNA). Following transcription, it constitutes the final step in the expression of genes. This process is carried out by ribosomes, complexes of protein and specialized RNA molecules. Ribosomes, transfer RNA (tRNA), and other proteins produce a chain of amino acids—the polypeptide—as the end product of translation.
Translation Produces the Building Blocks of Life
Ligand Binding and Linkage00:49

Ligand Binding and Linkage

Allosteric proteins have more than one ligand binding site; the binding of a ligand to any of these sites influences the binding of ligands to the other sites. When a protein is allosteric, its binding sites are called coupled or linked.  In the case of enzymes, the site that binds to the substrate is known as the active site and the other site is known as the regulatory site. When a ligand binds to the regulatory site, this leads to conformational changes in the protein that can influence the...
Translation01:31

Translation

Lesson: Translation
Translation is the process of synthesizing proteins from the genetic information carried by messenger RNA (mRNA). Following transcription, it constitutes the final step in the expression of genes. This process is carried out by ribosomes, complexes of protein and specialized RNA molecules. Ribosomes, transfer RNA (tRNA), and other proteins produce a chain of amino acids—the polypeptide—as the end product of translation.
Translation Produces the Building Blocks of Life
Mismatch Repair01:20

Mismatch Repair

Organisms are capable of detecting and fixing nucleotide mismatches that occur during DNA replication. This sophisticated process requires identifying the new strand and replacing the erroneous bases with correct nucleotides. Mismatch repair is coordinated by many proteins in both prokaryotes and eukaryotes.
The Mutator Protein Family Plays a Key Role in DNA Mismatch Repair
The human genome has more than 3 billion base pairs of DNA per cell. Prior to cell division, that vast amount of genetic...
Biosynthesis of Nucleic Acids01:28

Biosynthesis of Nucleic Acids

Nucleic acid biosynthesis is a fundamental biochemical process that produces the purine and pyrimidine nucleotides essential for DNA and RNA synthesis. This pathway maintains a balanced nucleotide pool, preventing imbalances that could jeopardize genetic integrity and cellular function. Given the crucial role of nucleotides, their synthesis is tightly regulated to ensure proper cellular homeostasis.Purine BiosynthesisThe biosynthesis of purine nucleotides begins with ribose-5-phosphate, a...