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Published on: May 19, 2017
Disruption of Ca2+/calmodulin:KSR1 interaction lowers ERK activation
Louise Thines1, Hyunbum Jang2, Zhigang Li1
1Department of Laboratory Medicine, National Institutes of Health, Bethesda, Maryland, USA.
Abstract:
KSR1, a key scaffold protein for the MAPK pathway, facilitates ERK activation upon growth factor stimulation. We recently demonstrated that KSR1 binds the Ca2+-binding protein calmodulin (CaM), thereby providing an intersection between KSR1-mediated and Ca2+ signaling. In this study, we set out to generate a KSR1 point mutant with reduced Ca2+/CaM binding in order to unravel the functional implications of their interaction. To do so, we solved the structural determinants of complex formation. Using purified fragments of KSR1, we showed that Ca2+/CaM binds to the CA3 domain of KSR1. We then used in silico molecular modeling to predict contact residues for binding. This approach identified two possible modes of interaction: (1) binding of extended Ca2+/CaM to a globular conformation of KSR1-CA3 via electrostatic interactions or (2) binding of collapsed Ca2+/CaM to α-helical KSR1-CA3 via hydrophobic interactions. Experimentally, site-directed mutagenesis of the predicted contact residues for the two binding models favored that where collapsed Ca2+/CaM binds to the α-helical conformation of KSR1-CA3. Importantly, replacing KSR1-Phe355 with Asp reduces Ca2+/CaM binding by 76%. The KSR1-F355D mutation also significantly impairs the ability of EGF to activate ERK, which reveals that Ca2+/CaM binding promotes KSR1-mediated MAPK signaling. This work, by uncovering structural insight into the binding of KSR1 to Ca2+/CaM, identifies a KSR1 single-point mutant as a bioreagent to selectively study the crosstalk between Ca2+ and KSR1-mediated signaling.
Insights
We identified how calcium and calmodulin bind to KSR1, a protein crucial for MAPK signaling. A specific KSR1 mutation reduces this binding, revealing its role in promoting ERK activation.
Area of Science:
- Cellular signaling
- Molecular biology
- Biochemistry
Background:
- KSR1 is a scaffold protein that activates ERK in the MAPK pathway.
- KSR1 interacts with calmodulin (CaM), a calcium-binding protein, linking Ca2+ and MAPK signaling.
Purpose of the Study:
- To generate a KSR1 point mutant with reduced Ca2+/CaM binding.
- To understand the functional consequences of KSR1 and Ca2+/CaM interaction.
Main Methods:
- Structural analysis of KSR1-CaM complex formation.
- In silico molecular modeling to predict binding sites.
- Site-directed mutagenesis to create KSR1 mutants.
- Biochemical assays to measure Ca2+/CaM binding and ERK activation.
Main Results:
- Ca2+/CaM binds to the CA3 domain of KSR1.
- The study identified a specific binding mode involving collapsed Ca2+/CaM and alpha-helical KSR1-CA3.
- A KSR1 mutant (F355D) showed a 76% reduction in Ca2+/CaM binding.
- This mutation significantly impaired EGF-induced ERK activation.
Conclusions:
- Ca2+/CaM binding enhances KSR1-mediated MAPK signaling.
- The KSR1 F355D mutant serves as a tool to study Ca2+ and KSR1 signaling crosstalk.
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