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The histidine-221 to tyrosine substitution in v-mos abolishes its biological function and its protein kinase activity
B Singh1, C Wittenberg, M Hannink
1Department of Molecular Pathology, University of Texas System Cancer Center, M.D. Anderson Hospital and Tumor Institute, Houston 77030.
Abstract:
The viral mos gene encodes a cytoplasmic transforming protein termed p37mos. Evidence gathered from a number of experimental approaches is consistent with p37mos having a serine/threonine protein kinase activity. To gain further understanding of the p37mos-associated biochemical activity, we constructed a mutation in the v-mos gene by oligonucleotide-directed mutagenesis yielding a histidine to tyrosine substitution at residue 221 in p37mos. Based upon nucleotide sequences, the histidine residue at the corresponding position is conserved in all the serine/threonine protein kinases from yeast to man, and is absent in protein-tyrosine kinases. The mutant p37mos (Tyr-221) was expressed in yeast and assayed for kinase activity. The mutant protein was inactive as judged by a loss of autophosphorylation activity in vitro, thus providing further support for the conclusion that p37mos is a protein kinase. When the mutant v-mos gene was introduced into a retroviral vector, pDD102, and assayed for focus-forming ability on NIH/3T3 cells, it was found to be inactive at both 37 and 30 degrees. In contrast, the wild-type v-mos had transforming activity at both temperatures. These results extend our earlier findings on the correlation between transforming ability and protein kinase activity. A histidine to tyrosine substitution at the corresponding position of the v-mos protein and the yeast CDC28 gene product causes a similar effect on the kinase activity. Therefore, this residue and/or the sequence near the N-terminal side of the conserved predicted phosphate transfer domain, near the middle of the complete catalytic domain, might be specifically involved in the catalytic activity of serine/threonine protein kinases in general.
Insights
Mutating the viral mos gene
Area of Science:
- Molecular Biology
- Virology
- Biochemistry
Background:
- The viral mos gene encodes p37mos, a cytoplasmic transforming protein.
- Experimental evidence suggests p37mos possesses serine/threonine protein kinase activity.
Purpose of the Study:
- To investigate the biochemical activity of p37mos.
- To understand the role of histidine residue 221 in p37mos kinase function.
Main Methods:
- Oligonucleotide-directed mutagenesis to create a His-to-Tyr substitution at residue 221 in p37mos.
- Expression and kinase activity assay of mutant p37mos in yeast.
- Assay of mutant v-mos gene transforming ability in NIH/3T3 cells.
Main Results:
- Mutant p37mos (Tyr-221) exhibited loss of autophosphorylation activity in vitro.
- The mutant v-mos gene showed no transforming activity in NIH/3T3 cells.
- A histidine to tyrosine substitution at residue 221 similarly affected yeast CDC28 kinase activity.
Conclusions:
- The study provides further support for p37mos being a protein kinase.
- Residue 221 is crucial for the catalytic activity of serine/threonine protein kinases.
- This conserved residue may be involved in the phosphate transfer mechanism of serine/threonine kinases.