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COSMIC-Linked Ras Mutations at the Interface Between H-Ras and PI3KγRBD Frequently Generate Affinity Increases
Elizabeth H Mead1, Kaeden C Batz1, Kuo-Hsien Shih1
1Department of Biochemistry and Molecular Biophysics Program, University of Colorado at Boulder, Boulder, CO 80309-0596, USA.
Abstract:
The three conventional isoforms of the Ras G-protein (H-, K-, N-Ras) function as molecular on-off switches that regulate a wide array of signaling pathways, including the Ras-PI3K-PIP3-PDK1-AKT pathway that is central to innate immunity and normal cell growth, and is dysregulated in many disease states. Activation of the pathway by Ras requires adequate Ras-PI3K binding affinity. Here we focus on the interface of known structure in the H-Ras:PI3Kγ co-complex essential to multiple pathways including directed pseudopod growth in leukocyte chemotaxis. At this interface 10 H-Ras residues, all 100% conserved between the H-, K- and N-Ras isomers, contact the Ras binding domain of PI3Kγ (PI3KγRBD). To investigate the degree to which the native H-Ras:PI3KγRBD interface is optimized by evolution for maximal binding affinity, 8 interfacial Ras mutations selected from the COSMIC database and the literature were introduced at the contact positions. All 8 Ras mutations were observed to alter the H-Ras:PI3KγRBD binding affinity, with 4 mutations yielding significant affinity increases and 4 yielding significant affinity decreases. These findings indicate that the native H-Ras:PI3KγRBD interface provides intermediate, rather than maximal, binding affinity. Such intermediate affinity is consistent with the substantial binding plasticity of the conserved H-, N-, K-Ras effector docking surface, which has evolved to bind a diverse array of effectors. Furthermore, the findings provide evidence that COSMIC-linked mutations at the H-Ras:PI3KγRBD interface frequently generate affinity increases as well as decreases, with potential implications for molecular mechanisms of disease and for tool development in cell biology.
Insights
Ras proteins act as molecular switches regulating cell growth and immunity. Studies show the H-Ras:PI3Kγ interface has intermediate, not maximal, binding affinity, suggesting evolutionary adaptation for binding diverse effectors.
Area of Science:
- Molecular biology
- Cell signaling
- Protein-protein interactions
Background:
- Ras G-proteins (H-, K-, N-Ras) are crucial molecular switches regulating signaling pathways.
- The Ras-PI3K-PIP3-PDK1-AKT pathway is vital for immunity and cell growth, often dysregulated in diseases.
- Ras activation depends on binding affinity with its effectors, like PI3Kγ.
Purpose of the Study:
- To investigate the evolutionary optimization of the H-Ras:PI3Kγ binding interface for affinity.
- To determine if the native interface maximizes binding affinity or provides intermediate affinity.
Main Methods:
- Focused on the H-Ras:PI3Kγ co-complex interface, involving 10 conserved H-Ras residues.
- Introduced 8 specific H-Ras mutations at contact positions, selected from the COSMIC database and literature.
- Assessed the impact of these mutations on H-Ras:PI3KγRBD binding affinity.
Main Results:
- All 8 introduced Ras mutations altered the H-Ras:PI3KγRBD binding affinity.
- Four mutations significantly increased binding affinity, while four significantly decreased it.
- The native H-Ras:PI3KγRBD interface exhibits intermediate, not maximal, binding affinity.
Conclusions:
- The intermediate binding affinity suggests evolutionary adaptation for binding diverse Ras effectors.
- COSMIC mutations at this interface can increase or decrease binding affinity.
- Findings have implications for understanding disease mechanisms and developing cell biology tools.
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