synaptic target recognition / Golgi reassembly / CD4-positive, alpha-beta T cell differentiation / NOTCH4 Activation and Transmission of Signal to the Nucleus / positive regulation of axon regeneration / CD4-positive or CD8-positive, alpha-beta T cell lineage commitment / negative regulation of synaptic vesicle exocytosis / establishment of Golgi localization / Signalling to p38 via RIT and RIN / respiratory system process ...synaptic target recognition / Golgi reassembly / CD4-positive, alpha-beta T cell differentiation / NOTCH4 Activation and Transmission of Signal to the Nucleus / positive regulation of axon regeneration / CD4-positive or CD8-positive, alpha-beta T cell lineage commitment / negative regulation of synaptic vesicle exocytosis / establishment of Golgi localization / Signalling to p38 via RIT and RIN / respiratory system process / head morphogenesis / ARMS-mediated activation / myeloid progenitor cell differentiation / tube formation / endothelial cell apoptotic process / regulation of synapse maturation / SHOC2 M1731 mutant abolishes MRAS complex function / Gain-of-function MRAS complexes activate RAF signaling / Rap1 signalling / negative regulation of fibroblast migration / positive regulation of D-glucose transmembrane transport / establishment of protein localization to membrane / regulation of T cell differentiation / negative regulation of protein localization to nucleus / positive regulation of axonogenesis / KSRP (KHSRP) binds and destabilizes mRNA / Negative feedback regulation of MAPK pathway / GP1b-IX-V activation signalling / Frs2-mediated activation / stress fiber assembly / face development / MAP kinase kinase activity / thyroid gland development / Regulation of localization of FOXO transcription factors / Interleukin-3, Interleukin-5 and GM-CSF signaling / somatic stem cell population maintenance / positive regulation of peptidyl-serine phosphorylation / synaptic vesicle exocytosis / Activation of BAD and translocation to mitochondria / phosphoserine residue binding / MAP kinase kinase kinase activity / negative regulation of endothelial cell apoptotic process / SARS-CoV-2 targets host intracellular signalling and regulatory pathways / regulation of ERK1 and ERK2 cascade / postsynaptic modulation of chemical synaptic transmission / protein targeting / cellular response to glucose starvation / SARS-CoV-1 targets host intracellular signalling and regulatory pathways / RHO GTPases activate PKNs / Chk1/Chk2(Cds1) mediated inactivation of Cyclin B:Cdk1 complex / ERK1 and ERK2 cascade / positive regulation of stress fiber assembly / negative regulation of TORC1 signaling / positive regulation of substrate adhesion-dependent cell spreading / Transcriptional and post-translational regulation of MITF-M expression and activity / substrate adhesion-dependent cell spreading / lung development / cellular response to calcium ion / negative regulation of innate immune response / thymus development / animal organ morphogenesis / hippocampal mossy fiber to CA3 synapse / TP53 Regulates Metabolic Genes / Translocation of SLC2A4 (GLUT4) to the plasma membrane / sperm end piece / Deactivation of the beta-catenin transactivating complex / protein sequestering activity / regulation of protein stability / RAF activation / Spry regulation of FGF signaling / Signaling by high-kinase activity BRAF mutants / Negative regulation of NOTCH4 signaling / MAP2K and MAPK activation / visual learning / cellular response to xenobiotic stimulus / centriolar satellite / epidermal growth factor receptor signaling pathway / Signaling by RAF1 mutants / Negative regulation of MAPK pathway / Signaling by moderate kinase activity BRAF mutants / Paradoxical activation of RAF signaling by kinase inactive BRAF / Signaling downstream of RAS mutants / Signaling by BRAF and RAF1 fusions / melanosome / intracellular protein localization / T cell differentiation in thymus / long-term synaptic potentiation / MAPK cascade / regulation of cell population proliferation / T cell receptor signaling pathway / sperm principal piece / presynapse / cell body / sperm midpiece / angiogenesis / scaffold protein binding / protein phosphatase binding / blood microparticle / DNA-binding transcription factor binding / vesicle 類似検索 - 分子機能
Raf-like Ras-binding domain / Raf-like Ras-binding / Ras-binding domain (RBD) profile. / Raf-like Ras-binding domain / Diacylglycerol/phorbol-ester binding / 14-3-3 domain / Delta-Endotoxin; domain 1 / Phorbol esters/diacylglycerol binding domain (C1 domain) / : / Zinc finger phorbol-ester/DAG-type signature. ...Raf-like Ras-binding domain / Raf-like Ras-binding / Ras-binding domain (RBD) profile. / Raf-like Ras-binding domain / Diacylglycerol/phorbol-ester binding / 14-3-3 domain / Delta-Endotoxin; domain 1 / Phorbol esters/diacylglycerol binding domain (C1 domain) / : / Zinc finger phorbol-ester/DAG-type signature. / Zinc finger phorbol-ester/DAG-type profile. / Protein kinase C conserved region 1 (C1) domains (Cysteine-rich domains) / Protein kinase C-like, phorbol ester/diacylglycerol-binding domain / C1-like domain superfamily / 14-3-3 proteins signature 2. / 14-3-3 protein, conserved site / 14-3-3 proteins signature 1. / 14-3-3 protein / 14-3-3 homologues / 14-3-3 domain / 14-3-3 domain superfamily / 14-3-3 protein / Protein tyrosine and serine/threonine kinase / Serine-threonine/tyrosine-protein kinase, catalytic domain / Ubiquitin-like domain superfamily / Serine/threonine-protein kinase, active site / Serine/Threonine protein kinases active-site signature. / Serine/Threonine protein kinases, catalytic domain / Protein kinase, ATP binding site / Protein kinases ATP-binding region signature. / Protein kinase domain profile. / Protein kinase domain / Protein kinase-like domain superfamily / Up-down Bundle / Mainly Alpha 類似検索 - ドメイン・相同性
National Institutes of Health/National Cancer Institute (NIH/NCI)
ZIA BC 011744
米国
National Institutes of Health/National Cancer Institute (NIH/NCI)
ZIA BC 010329
米国
引用
ジャーナル: Nat Commun / 年: 2022 タイトル: Structural insights into the BRAF monomer-to-dimer transition mediated by RAS binding. 著者: Juliana A Martinez Fiesco / David E Durrant / Deborah K Morrison / Ping Zhang / 要旨: RAF kinases are essential effectors of RAS, but how RAS binding initiates the conformational changes needed for autoinhibited RAF monomers to form active dimers has remained unclear. Here, we present ...RAF kinases are essential effectors of RAS, but how RAS binding initiates the conformational changes needed for autoinhibited RAF monomers to form active dimers has remained unclear. Here, we present cryo-electron microscopy structures of full-length BRAF complexes derived from mammalian cells: autoinhibited, monomeric BRAF:14-3-3:MEK and BRAF:14-3-3 complexes, and an inhibitor-bound, dimeric BRAF:14-3-3 complex, at 3.7, 4.1, and 3.9 Å resolution, respectively. In both autoinhibited, monomeric structures, the RAS binding domain (RBD) of BRAF is resolved, revealing that the RBD forms an extensive contact interface with the 14-3-3 protomer bound to the BRAF C-terminal site and that key basic residues required for RBD-RAS binding are exposed. Moreover, through structure-guided mutational studies, our findings indicate that RAS-RAF binding is a dynamic process and that RBD residues at the center of the RBD:14-3-3 interface have a dual function, first contributing to RAF autoinhibition and then to the full spectrum of RAS-RBD interactions.