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Published on: October 5, 2020
The Raf/LIN-45 C-terminal distal tail segment negatively regulates signaling in Caenorhabditis elegans
Abstract:
Raf protein kinases act as Ras-GTP sensing components of the ERK signal transduction pathway in animal cells, influencing cell proliferation, differentiation, and survival. In humans, somatic and germline mutations in the genes BRAF and RAF1 are associated with malignancies and developmental disorders. Recent studies shed light on the structure of activated Raf, a heterotetramer consisting of Raf and 14-3-3 dimers, and raised the possibility that a Raf C-terminal distal tail segment (DTS) regulates activation. We investigated the role of the DTS using the Caenorhabditis elegans, which has a single Raf ortholog termed lin-45 . We discovered that truncations removing the DTS strongly enhanced lin-45(S312A) , a weak gain-of-function allele equivalent to RAF1 mutations found in patients with Noonan Syndrome. We generated mutations to test three elements of the LIN-45 DTS, which we termed the active site binding sequence (ASBS), the KTP motif, and the aromatic cluster. In the context of lin-45(S312A), mutation of either the ASBS, KTP motif, or aromatic cluster enhanced activity. We used AlphaFold to predict DTS protein interactions for LIN-45, fly Raf, and human BRAF, within the activated heterotetramer complex. We propose distinct functions for the LIN-45 DTS elements: i) the ASBS binds the kinase active site as an inhibitor, ii) phosphorylation of the KTP motif modulates DTS-kinase domain interaction, and iii) the aromatic cluster anchors the DTS in an inhibitory conformation. This work establishes that the Raf/LIN-45 DTS negatively regulates signaling in C. elegans and provides a model for its function in other Raf proteins.
Insights
The Raf C-terminal distal tail segment (DTS) negatively regulates signaling. Removing the DTS enhances Raf kinase activity, suggesting its inhibitory role in cell proliferation and development.
Area of Science:
- Molecular Biology
- Cell Signaling
- Genetics
Background:
- Raf kinases are key components of the ERK signaling pathway, regulating cell growth and differentiation.
- Mutations in human BRAF and RAF1 genes are linked to cancers and developmental disorders.
- The Raf C-terminal distal tail segment (DTS) is a potential regulator of Raf activation.
Purpose of the Study:
- To investigate the role of the Raf C-terminal distal tail segment (DTS) in regulating Raf kinase activity.
- To elucidate the function of specific DTS elements in the Caenorhabditis elegans LIN-45 protein.
- To develop a model for DTS function in Raf proteins across species.
Main Methods:
- Utilized Caenorhabditis elegans as a model organism with its single Raf ortholog, lin-45.
- Generated truncations and point mutations in the LIN-45 DTS, including the active site binding sequence (ASBS), KTP motif, and aromatic cluster.
- Employed AlphaFold for in silico prediction of DTS protein interactions within activated Raf complexes.
Main Results:
- Truncations removing the DTS significantly enhanced the activity of a weak gain-of-function lin-45 allele (lin-45(S312A)).
- Mutations in the ASBS, KTP motif, or aromatic cluster of the LIN-45 DTS also enhanced kinase activity.
- AlphaFold predictions suggested distinct inhibitory roles for these DTS elements in Raf signaling.
Conclusions:
- The Raf/LIN-45 DTS acts as a negative regulator of signaling in C. elegans.
- The ASBS, KTP motif, and aromatic cluster within the DTS have distinct inhibitory functions.
- This study provides a conserved model for DTS-mediated regulation of Raf kinase activity in humans and other species.
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