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Membrane-SPINE: A Biochemical Tool to Identify Protein-protein Interactions of Membrane Proteins In Vivo
Published on: November 7, 2013
Three distinct regions of cRaf kinase domain interact with membrane
Priyanka Prakash1, John F Hancock2, Alemayehu A Gorfe2
1Department of Integrative Biology and Pharmacology, McGovern Medical School, University of Texas Health Science Center at Houston, 6431 Fannin St., Houston, Texas, 77030, USA. priyanka.p.srivastava@uth.tmc.edu.
Abstract:
Raf kinases are downstream effectors of small GTPase Ras. Mutations in Ras and Raf are associated with a variety of cancers and genetic disorders. Of the three Raf isoforms, cRaf is most frequently involved in tumor initiation by Ras. Cytosolic Raf is auto-inhibited and becomes active upon recruitment to the plasma membrane. Since the catalytic domain of Raf is its kinase domain, we ask the following: does the kinase domain of Raf has potential to interact with membrane and if yes, what role does the membrane interaction play? We present a model of cRaf kinase domain in complex with a heterogeneous membrane bilayer using atomistic molecular dynamics simulation. We show that the kinase domain of cRaf has three distinct membrane-interacting regions: a polybasic motif (R.RKTR) from the regulatory αC-helix, an aromatic/hydrophobic cluster from the N-terminal acidic region (NtA) and positively charged/aromatic cluster from the activation segment (AS). We show that residues from these regions form an extended membrane-interacting surface that resembles the membrane-interacting residues from known membrane-binding domains. Activating phosphorylatable regions (NtA and AS), make direct contact with the membrane whereas R.RKTR forms specific multivalent salt bridges with PA. PA lipids dwell for longer times around the R.RKTR motif. Our results suggest that membrane interaction of monomeric cRaf kinase domain likely orchestrates the Raf activation process and modulates its function. We show that R.RKTR is a hotspot that interacts with membrane when cRaf is monomeric and becomes part of the interface upon Raf dimerization. We propose that in terms of utilizing a specific hotspot to form membrane interaction and dimer formation, both Raf and its upstream binding partner KRas, are similar.
Insights
The Raf kinase domain interacts with cell membranes via specific regions, influencing its activation. This membrane interaction is crucial for Raf function and shares similarities with KRas binding mechanisms.
Area of Science:
- Molecular Biology
- Biophysics
- Cancer Research
Background:
- Raf kinases are key downstream effectors of Ras GTPase.
- Mutations in Ras and Raf are implicated in various cancers.
- cRaf, a Raf isoform, is frequently involved in Ras-driven tumor initiation.
Purpose of the Study:
- To investigate if the cRaf kinase domain can interact with membranes.
- To determine the role of this membrane interaction in cRaf activation and function.
Main Methods:
- Atomistic molecular dynamics simulations were used.
- A model of the cRaf kinase domain complexed with a heterogeneous membrane bilayer was created.
Main Results:
- Identified three distinct membrane-interacting regions in the cRaf kinase domain: a polybasic motif (R.RKTR), an N-terminal acidic region (NtA), and the activation segment (AS).
- These regions form an extended membrane-interacting surface.
- The R.RKTR motif acts as a hotspot for membrane interaction in monomeric cRaf and is involved in dimerization.
Conclusions:
- Membrane interaction of the monomeric cRaf kinase domain likely regulates its activation and function.
- The R.RKTR motif plays a dual role in membrane binding and dimer formation.
- Both Raf and KRas utilize specific hotspots for membrane interaction and complex formation.
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