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Inducible and Reversible Dominant-negative DN Protein Inhibition
Published on: January 7, 2019
Direct inhibition of oncogenic KRAS by Bacillus pumilus ribonuclease (binase)
Olga N Ilinskaya1, Indrabahadur Singh2, Elena Dudkina1
1Institute of Fundamental Medicine and Biology, Kazan Federal (Volga-Region) University, Kremlevskaya str. 18, 420008, Kazan, Russia.
Abstract:
RAS proteins function as molecular switches that transmit signals from cell surface receptors into specific cellular responses via activation of defined signaling pathways (Fang, 2015). Aberrant constitutive RAS activation occurs with high incidence in different types of cancer (Bos, 1989). Thus, inhibition of RAS-mediated signaling is extremely important for therapeutic approaches against cancer. Here we showed that the ribonuclease (RNase) binase, directly interacts with endogenous KRAS. Further, molecular structure models suggested an inhibitory nature of binase-RAS interaction involving regions of RAS that are important for different aspects of its function. Consistent with these models, phosphorylation analysis of effectors of RAS-mediated signaling revealed that binase inhibits the MAPK/ERK signaling pathway. Interestingly, RAS activation assays using a non-hydrolysable GTP analog (GTPγS) demonstrated that binase interferes with the exchange of GDP by GTP. Furthermore, we showed that binase reduced the interaction of RAS with the guanine nucleotide exchange factor (GEF), SOS1. Our data support a model in which binase-KRAS interaction interferes with the function of GEFs and stabilizes the inactive GDP-bound conformation of RAS thereby inhibiting MAPK/ERK signaling. This model plausibly explains the previously reported, antitumor-effect of binase specific towards RAS-transformed cells and suggests the development of anticancer therapies based on this ribonuclease.
Insights
The ribonuclease binase directly interacts with KRAS, inhibiting the MAPK/ERK pathway by stabilizing inactive RAS. This finding supports binase as a potential anticancer therapy targeting RAS-driven cancers.
Area of Science:
- Molecular biology
- Oncology
- Biochemistry
Background:
- RAS proteins are key signal transducers, and their aberrant activation drives cancer.
- Inhibiting RAS-mediated signaling is a critical therapeutic strategy for cancer treatment.
Purpose of the Study:
- To investigate the interaction between ribonuclease (RNase) binase and KRAS.
- To elucidate the mechanism by which binase affects RAS signaling.
- To explore the potential of binase as an anticancer therapeutic agent.
Main Methods:
- Direct interaction assays between binase and endogenous KRAS.
- Molecular structure modeling of binase-RAS interaction.
- Phosphorylation analysis of RAS signaling pathway effectors.
- RAS activation assays using GTPγS.
- Analysis of RAS interaction with guanine nucleotide exchange factor (GEF) SOS1.
Main Results:
- Binase directly interacts with KRAS, with structural models suggesting inhibitory potential.
- Binase inhibits the MAPK/ERK signaling pathway.
- Binase interferes with the GDP/GTP exchange on RAS.
- Binase reduces the interaction between RAS and the GEF SOS1.
Conclusions:
- Binase-KRAS interaction inhibits GEF function, stabilizing the inactive GDP-bound RAS conformation.
- This mechanism effectively inhibits MAPK/ERK signaling.
- Binase demonstrates potential as a novel anticancer therapeutic targeting RAS-transformed cells.
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