Related Experiment Videos
Molecular features of the viral and cellular Src kinases involved in interactions with the GTPase-activating protein
B K Brott1, S Decker, M C O'Brien
1Department of Microbiology and Immunology, University of Michigan Medical School, Ann Arbor 48109.
Abstract:
GTPase-activating protein (GAP) enhances the rate of GTP hydrolysis by cellular Ras proteins and is implicated in mitogenic signal transduction. GAP is phosphorylated on tyrosine in cells transformed by Rous sarcoma virus and serves as an in vitro substrate of the viral Src (v-Src) kinase. Our previous studies showed that GAP complexes stably with normal cellular Src (c-Src), although its association with v-Src is less stable. To further investigate the molecular basis for interactions between GAP and the Src kinases, we examined GAP association with and phosphorylation by a series of c-Src and v-Src mutants. Analysis of GAP association with c-Src/v-Src chimeric proteins demonstrates that GAP associates stably with Src proteins possessing low kinase activity and poorly with activated Src kinases, especially those that lack the carboxy-terminal segment of c-Src containing the regulatory amino acid Tyr-527. Phosphorylated Tyr-527 is a major determinant of c-Src association with GAP, as demonstrated by c-Src point mutants in which Tyr-527 is changed to Phe. While the isolated amino-terminal half of the c-Src protein is insufficient for stable GAP association, analysis of point substitutions of highly conserved amino acid residues in the c-Src SH2 region indicate that this region also influences Src-GAP complex formation. Therefore, our results suggest that both Tyr-527 phosphorylation and the SH2 region contribute to stable association of c-Src with GAP. Analysis of in vivo phosphorylation of GAP by v-Src mutants containing deletions encompassing the SH2, SH3, and unique regions suggests that the kinase domain of v-Src contains sufficient substrate specificity for GAP phosphorylation. Even though tyrosine phosphorylation of GAP correlates to certain extent with the transforming ability of various c-Src and v-Src mutants, our data suggest that other GAP-associated proteins may also have roles in Src-mediated oncogenic transformation. These findings provide additional evidence for the specificity of Src interactions with GAP and support the hypothesis that these interactions contribute to the biological functions of the Scr kinases.
Insights
Guanine nucleotide-releasing factor (GAP) interaction with Src kinases is influenced by Src kinase activity and the phosphorylation status of Tyr-527. Both Tyr-527 phosphorylation and the SH2 region are crucial for stable c-Src association with GAP.
Area of Science:
- Biochemistry
- Molecular Biology
- Cell Signaling
Background:
- Guanine nucleotide-releasing factor (GAP) activates Ras GTPase and is involved in mitogenic signaling.
- GAP is tyrosine-phosphorylated by viral Src (v-Src) kinase and associates with normal cellular Src (c-Src).
Purpose of the Study:
- To investigate the molecular basis of interactions between GAP and Src kinases.
- To determine the role of specific Src protein regions and phosphorylation in GAP association and phosphorylation.
Main Methods:
- Utilized c-Src and v-Src mutants, including chimeric proteins and point mutants (Tyr-527 to Phe).
- Analyzed GAP association with Src proteins through co-immunoprecipitation and in vivo phosphorylation assays.
Main Results:
- GAP associates stably with low-activity c-Src and poorly with activated Src kinases lacking Tyr-527.
- Phosphorylated Tyr-527 is a key determinant for stable c-Src-GAP complex formation.
- The SH2 region of c-Src also contributes to stable GAP association.
- The kinase domain of v-Src demonstrates specificity for GAP phosphorylation.
Conclusions:
- Both Tyr-527 phosphorylation and the SH2 region are critical for stable c-Src-GAP interaction.
- Src kinase activity and specific domains dictate GAP binding and phosphorylation.
- These interactions are specific and likely contribute to Src kinase-mediated biological functions.