Unveiling the Domain-Specific and RAS Isoform-Specific Details of BRAF Regulation
Trebino, T. E.; Markusic, B.; Nan, H.; Banerjee, S.; Wang, Z.
Show abstract
BRAF is a key member in the MAPK signaling pathway essential for cell growth, proliferation, and differentiation. Dysregulation or mutation of BRAF is often the underlying cause of various types of cancer. RAS, a small GTPase protein that acts upstream of BRAF, has been identified as a driver of up to one-third of all cancers. When BRAF interacts with RAS via the RAS binding domain (RBD) and membrane recruitment, BRAF undergoes a conformational change from an inactive, autoinhibited monomer to an active dimer and subsequently phosphorylates MEK to propagate the signal. Despite the central role of BRAF in cellular signaling, the exact order and magnitude of its activation steps has yet to be confirmed experimentally. By studying the inter- and intramolecular interactions of BRAF, we unveil the domain-specific and isoform-specific details of BRAF regulation. We employed pulldown assays, open surface plasmon resonance (OpenSPR), and hydrogen-deuterium exchange mass spectrometry (HDX-MS) to investigate the roles of the regulatory regions in BRAF activation and autoinhibition. Our results demonstrate that the BRAF specific region (BSR) and cysteine rich domain (CRD) play a crucial role in regulating the activity of BRAF. Moreover, we quantified the autoinhibitory binding affinities between the N-terminal domains and the kinase domain (KD) of BRAF and revealed the individual roles of the BRAF regulatory domains. Additionally, our findings provide evidence that the BSR negatively regulates BRAF activation in a RAS isoform-specific manner. Our findings also indicate that oncogenic BRAF-KDD594G mutant has a lower affinity for the regulatory domains, implicating that pathogenic BRAF acts through decreased propensity for autoinhibition. Collectively, our study provides valuable insights into the activation mechanism of BRAF kinase and may help to guide the development of new therapeutic strategies for cancer treatment.
Matching journals
The top 5 journals account for 50% of the predicted probability mass.
Similar papers in this journal
- Targeting the Protein-Protein Interaction Between the CDC37 Co-Chaperone and Client Kinases by an Allosteric RAF Dimer Breaker 96%
- Development of an inhibitory TTC7B selective nanobody that blocks EFR3 recruitment of PI4KA 94%
- Setdb1 and Atf7IP form a hetero-trimeric complex that blocks Setdb1 nuclear export 94%
Similar papers in this journal
- The oncogenic CCDC6-RET fusion product is a dual ATP and ADP-dependent kinase that functions via cis-phosphorylation 95%
- Potent and Selective SETDB1 Covalent Negative Allosteric Modulator Reduces Methyltransferase Activity in Cells 95%
- Allosteric Regulation of the EphA2 Receptor Intracellular Region by Serine/Threonine Kinases 95%
Similar papers in this journal
- Conformational dynamics of FERM-mediated autoinhibition in Pyk2 tyrosine kinase. 96%
- Intrinsically disordered regions in the transcription factor MYC:MAX modulate DNA binding via intramolecular interactions 95%
- Expression and purification of Protease Activated Receptor 4 (PAR4) and analysis with histidine hydrogen deuterium exchange. 94%
Similar papers in this journal
- Autoinhibition in the Signal Transducer CIN85 Modulates B Cell Activation 94%
- DNA modulates structural transitions and oligomerization kinetics of the functional amyloid CRES 93%
- The Holdup Multiplex, an assay for high-throughput measurement of protein-ligand affinity constants using a mass-spectrometry readout 93%
"Similar papers" are the closest papers from that journal in the model's embedding space. They show what the match is built on, but the ranking comes mostly from a classifier over the whole training set, not from these examples alone.