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Characterize Disease-related Mutants of RAF Family Kinases by Using a Set of Practical and Feasible Methods
Published on: July 17, 2019
What makes Ras an efficient molecular switch: a computational, biophysical, and structural study of Ras-GDP
Daniel Filchtinski1, Oz Sharabi, Alma Rüppel
1Physikalische Chemie I, Fakultät für Chemie und Biochemie, Ruhr-Universität-Bochum, Universitätstr. 150, 44780 Bochum, Germany.
Abstract:
Ras is a small GTP-binding protein that is an essential molecular switch for a wide variety of signaling pathways including the control of cell proliferation, cell cycle progression and apoptosis. In the GTP-bound state, Ras can interact with its effectors, triggering various signaling cascades in the cell. In the GDP-bound state, Ras looses its ability to bind to known effectors. The interaction of the GTP-bound Ras (Ras(GTP)) with its effectors has been studied intensively. However, very little is known about the much weaker interaction between the GDP-bound Ras (Ras(GDP)) and Ras effectors. We investigated the factors underlying the nucleotide-dependent differences in Ras interactions with one of its effectors, Raf kinase. Using computational protein design, we generated mutants of the Ras-binding domain of Raf kinase (Raf) that stabilize the complex with Ras(GDP). Most of our designed mutations narrow the gap between the affinity of Raf for Ras(GTP) and Ras(GDP), producing the desired shift in binding specificity towards Ras(GDP). A combination of our best designed mutation, N71R, with another mutation, A85K, yielded a Raf mutant with a 100-fold improvement in affinity towards Ras(GDP). The Raf A85K and Raf N71R/A85K mutants were used to obtain the first high-resolution structures of Ras(GDP) bound to its effector. Surprisingly, these structures reveal that the loop on Ras previously termed the switch I region in the Ras(GDP).Raf mutant complex is found in a conformation similar to that of Ras(GTP) and not Ras(GDP). Moreover, the structures indicate an increased mobility of the switch I region. This greater flexibility compared to the same loop in Ras(GTP) is likely to explain the natural low affinity of Raf and other Ras effectors to Ras(GDP). Our findings demonstrate that an accurate balance between a rigid, high-affinity conformation and conformational flexibility is required to create an efficient and stringent molecular switch.
Insights
Researchers engineered Raf kinase mutants to better bind GDP-bound Ras (Ras(GDP)). This revealed Ras(GDP) adopts a more flexible switch I conformation, explaining its naturally weak effector interactions.
Area of Science:
- Molecular biology
- Cell signaling
- Structural biology
Background:
- Ras proteins act as molecular switches, regulating cell signaling pathways.
- Ras(GTP) binds effectors strongly, while Ras(GDP) binds weakly, a difference not well understood.
- Understanding these nucleotide-dependent interactions is crucial for deciphering cell signaling.
Purpose of the Study:
- To investigate the molecular basis for differential binding affinities between Ras and its effector, Raf kinase.
- To engineer Raf mutants with enhanced affinity for GDP-bound Ras (Ras(GDP)).
- To elucidate the structural mechanisms underlying Ras-effector interactions.
Main Methods:
- Computational protein design to generate Raf kinase mutants.
- Biochemical assays to measure binding affinities.
- X-ray crystallography to determine high-resolution structures of Ras-effector complexes.
Main Results:
- Designed Raf mutants showed increased affinity for Ras(GDP), narrowing the specificity gap.
- A double mutant (Raf N71R/A85K) exhibited a 100-fold improvement in Ras(GDP) binding affinity.
- High-resolution structures revealed Ras(GDP) in complex with engineered Raf mutants adopts a conformation similar to Ras(GTP), with increased switch I region mobility.
Conclusions:
- The flexibility of the Ras switch I region is a key determinant of effector binding affinity.
- Engineered changes in Raf can stabilize Ras(GDP) binding by altering Ras conformation.
- A balance between conformational rigidity and flexibility is essential for Ras proteins to function as precise molecular switches.
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