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Mutations in the catalytic loop HRD motif alter the activity and function of Drosophila Src64
Taylor C Strong1, Gurvinder Kaur, Jeffrey H Thomas
1Department of Cell Biology and Biochemistry, Texas Tech University Health Sciences Center, Lubbock, Texas, United States of America.
Insights
Mutations in the Drosophila src64 gene
Area of Science:
- Molecular Biology
- Genetics
- Biochemistry
Background:
- The HRD motif is crucial for protein kinase catalytic activity.
- The src64 gene in Drosophila plays a role in development and cytoskeletal processes.
Purpose of the Study:
- To investigate the function of the HRD motif amino acids in the src64 kinase.
- To analyze the biochemical and biological effects of specific src64 mutations.
Main Methods:
- Site-directed mutagenesis of the HRD motif in src64.
- Biochemical assays to measure kinase activity.
- Analysis of developmental phenotypes and fertility in mutant flies.
Main Results:
- Aspartate mutation to asparagine abolished biological function and reduced fertility, highlighting its critical enzymatic role.
- Arginine to cysteine mutation had minimal impact on kinase activity or cytoskeletal function.
- Histidine to leucine mutation retained partial kinase activity and biological function, suggesting an independent role.
Conclusions:
- The aspartate residue in the HRD motif is essential for src64 enzymatic activity and biological function.
- The arginine residue may not be critical for active site conformation, while the histidine residue has functions beyond hydrogen bonding.
Abstract:
The catalytic loop HRD motif is found in most protein kinases and these amino acids are predicted to perform functions in catalysis, transition to, and stabilization of the active conformation of the kinase domain. We have identified mutations in a Drosophila src gene, src64, that alter the three HRD amino acids. We have analyzed the mutants for both biochemical activity and biological function during development. Mutation of the aspartate to asparagine eliminates biological function in cytoskeletal processes and severely reduces fertility, supporting the amino acid's critical role in enzymatic activity. The arginine to cysteine mutation has little to no effect on kinase activity or cytoskeletal reorganization, suggesting that the HRD arginine may not be critical for coordinating phosphotyrosine in the active conformation. The histidine to leucine mutant retains some kinase activity and biological function, suggesting that this amino acid may have a biochemical function in the active kinase that is independent of its side chain hydrogen bonding interactions in the active site. We also describe the phenotypic effects of other mutations in the SH2 and tyrosine kinase domains of src64, and we compare them to the phenotypic effects of the src64 null allele.
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