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Divergent CRD-Dependent Mechanisms Govern RAS Isoform-Selective Recruitment of CRAF and ARAF
Shrhea Banerjee1, Sravani Malasani1, Shriti Banerjee1
1Department of Chemistry & Biochemistry, Rowan University, 201 Mullica Hill Rd, Glassboro, NJ.
Abstract:
RAF kinases interpret signals from the three major RAS isoforms to initiate MAPK pathway activation, yet the molecular logic that governs isoform-specific RAS recruitment and the early events that relieve RAF autoinhibition are not yet fully understood. In particular, how the modular N-terminal regulatory architecture of CRAF and ARAF, anchored by the multifunctional cysteine-rich domain (CRD), discriminates among HRAS, KRAS, and NRAS has remained a central unresolved question. Here, we combine quantitative biophysical measurements with structural and dynamic analyses to define how RAS isoform identity and CRD engagement shape the earliest steps of RAF activation. These studies reveal unexpectedly divergent modes of RAS recognition between CRAF and ARAF and expose previously unappreciated functions of the CRD in modulating RAS affinity and intramolecular regulatory contacts. We further identify a direct link between RAS binding and destabilization of RAF autoinhibition, providing mechanistic insight into how RAS initiates the transition from an inactive monomer to an activation-competent assembly. Finally, we show that emerging KRAS inhibitors variably perturb KRAS-CRAF interactions, offering insight into how these therapeutics influence early RAS-RAF signaling events. Together, this work uncovers distinct biophysical principles that govern RAS-RAF selectivity and reveals a regulatory role for the CRD that reframes our understanding of RAF activation and its dysregulation in RAS-driven cancers.
Insights
RAF kinases activate MAPK signaling, but how they distinguish between RAS isoforms (HRAS, KRAS, NRAS) is unclear. This study shows the cysteine-rich domain (CRD) is key to RAS selectivity, revealing new insights into RAF activation and cancer therapies.
Area of Science:
- Molecular biology
- Cell signaling
- Biophysics
Background:
- The RAS-RAF signaling pathway is crucial for cell growth and frequently altered in cancer.
- RAF kinases (CRAF, ARAF) are activated by RAS proteins, initiating the MAPK cascade.
- The precise mechanisms of RAS isoform-specific recruitment and RAF autoinhibition relief remain poorly understood.
Purpose of the Study:
- To elucidate the molecular basis of RAS isoform selectivity in RAF activation.
- To define the role of the cysteine-rich domain (CRD) in RAS-RAF interactions.
- To understand how RAS binding triggers RAF activation and impacts therapeutic strategies.
Main Methods:
- Quantitative biophysical measurements
- Structural and dynamic analyses
- Biochemical assays
Main Results:
- Identified divergent RAS recognition modes between CRAF and ARAF.
- Demonstrated critical functions of the CRD in modulating RAS affinity and intramolecular contacts.
- Established a direct link between RAS binding and the destabilization of RAF autoinhibition.
- Showed variable effects of KRAS inhibitors on KRAS-CRAF interactions.
Conclusions:
- Uncovered distinct biophysical principles governing RAS-RAF selectivity.
- Revealed a significant regulatory role for the CRD in RAF activation.
- Provided mechanistic insights into RAS-initiated MAPK signaling.
- Offered a framework for understanding the impact of KRAS inhibitors on early signaling events and potential therapeutic development for RAS-driven cancers.
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