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Updated: Jun 11, 2025

Author Spotlight: Integrating BRET-Based Assays and Rare Mutation Analysis to Decipher RAF Kinase Regulation in Live Cells
Published on: March 1, 2024
Oxidative protein damage negatively affects protein-protein interaction: The case of KRAS-cRAF
Marina Rudan Dimlić1, Sanda Raić1, Marko Močibob2
1Mediterranean Institute for Life Sciences, Split, Croatia.
Abstract:
Protein-protein interactions (PPIs) play crucial roles in cellular signaling, transmitting signals from the cell surface to its interior. One of the most important signaling cascades is the RAS-RAF-MEK-ERK pathway. This pathway is initiated by various upstream signaling reactions, including receptor tyrosine kinase (RTK) activation, and it controls many biological functions like cell proliferation, differentiation, and survival. Once RAS is activated, it binds RAF and relays the signal to downstream proteins. The RAS-binding domain (RBD) in RAF protein plays a crucial role in this process, facilitating the RAS-ERK pathway signaling. In this study, we explored the effect of oxidative stress induced by UV radiation on the KRAS-RBD interaction. Using the Split Intein-Mediated Protein Ligation (SIMPL) method, we assessed the impact of different UV doses on KRAS-RBD interactions and observed a disruption of this interaction at higher doses. UV-treated samples exhibited high levels of protein carbonylation, as detected by Oxime Blot and mass spectrometry (MS) analysis, indicating oxidative damage. The MS results provided detailed insights into specific carbonylation modifications on the KRAS protein. Our study demonstrates that protein oxidation and carbonylation can disrupt protein-protein interactions, specifically the KRAS/c-RAF interaction. These findings highlight the impact of oxidative stress on signaling pathways, such as those triggered by UV irradiation. A deeper understanding of these molecular changes may aid in developing therapies targeting diseases linked to oxidative stress, including cancer.
Insights
UV radiation causes oxidative stress, damaging proteins and disrupting crucial KRAS-RAF interactions in cellular signaling pathways. This damage, specifically protein carbonylation, impacts cell functions and may inform disease therapies.
Area of Science:
- Molecular Biology
- Cellular Signaling
- Biochemistry
Background:
- Protein-protein interactions (PPIs) are vital for cellular signal transmission.
- The RAS-RAF-MEK-ERK pathway, initiated by receptor tyrosine kinase (RTK) activation, controls cell proliferation, differentiation, and survival.
- The RAS-binding domain (RBD) in RAF is essential for relaying signals downstream of RAS.
Purpose of the Study:
- To investigate the impact of UV-induced oxidative stress on the KRAS-RBD interaction.
- To determine how varying UV doses affect KRAS-RBD binding.
- To elucidate the molecular mechanisms underlying UV-induced disruption of this interaction.
Main Methods:
- Split Intein-Mediated Protein Ligation (SIMPL) assay to assess KRAS-RBD interaction.
- Oxime Blot to detect protein carbonylation.
- Mass spectrometry (MS) to identify specific carbonylation sites on KRAS.
Main Results:
- Higher UV doses disrupted the KRAS-RBD interaction.
- UV-treated samples showed significant protein carbonylation, indicating oxidative damage.
- MS analysis identified specific carbonylation modifications on the KRAS protein.
Conclusions:
- Protein oxidation and carbonylation can disrupt critical protein-protein interactions, such as KRAS/c-RAF.
- Oxidative stress, exemplified by UV irradiation, significantly impacts cellular signaling pathways.
- Understanding these oxidative stress-induced molecular changes may lead to novel therapeutic strategies for diseases involving oxidative damage, including cancer.
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