Molecular and Cellular Biology · 2012 · 50 citations · 48 references
GeneticsPathologyCardiac RegenerationMolecular GeneticsCongenital Heart AnomalyTranscriptional RegulationSignaling PathwayCell RegulationMek/erk ActivationReceptor Tyrosine KinaseBraf HeterodimerizationCommon Pathogenic MechanismCell SignalingMolecular SignalingCardiomyopathyMolecular PhysiologyGene ExpressionEpigenetic RegulationCardiac ReprogrammingCell BiologyDevelopmental BiologySignal TransductionDisease MechanismGenetic DisorderNatural SciencesPathogenesisProtein KinaseNoonan SyndromeMedicineCell Development
Noonan syndrome (NS) is a relatively common autosomal dominant disorder characterized by congenital heart defects, short stature, and facial dysmorphia. NS is caused by germ line mutations in several components of the RAS-RAF-MEK-extracellular signal-regulated kinase (ERK) mitogen-activated protein kinase (MAPK) pathway, including both kinase-activating and kinase-impaired alleles of RAF1 (∼3 to 5%), which encodes a serine-threonine kinase for MEK1/2. To investigate how kinase-impaired RAF1 mutants cause NS, we generated knock-in mice expressing Raf1(D486N). Raf1(D486N/+) (here D486N/+) female mice exhibited a mild growth defect. Male and female D486N/D486N mice developed concentric cardiac hypertrophy and incompletely penetrant, but severe, growth defects. Remarkably, Mek/Erk activation was enhanced in Raf1(D486N)-expressing cells compared with controls. RAF1(D486N), as well as other kinase-impaired RAF1 mutants, showed increased heterodimerization with BRAF, which was necessary and sufficient to promote increased MEK/ERK activation. Furthermore, kinase-activating RAF1 mutants also required heterodimerization to enhance MEK/ERK activation. Our results suggest that an increased heterodimerization ability is the common pathogenic mechanism for NS-associated RAF1 mutations.
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Mechanism of Activation of the RAF-ERK Signaling Pathway by Oncogenic Mutations of B-RAF
Paul Wan, Mathew J. Garnett, S. Mark Roe et al. · Cell · 2004 · 2.8K citations · Full text
Oncogenic Mutations, Signal Transduction, Signaling Pathway +9