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Published on: June 9, 2017
Molecular Basis for Allosteric Inhibition of GTP-Bound H-Ras Protein by a Small-Molecule Compound Carrying a
Shigeyuki Matsumoto1, Toshiki Hiraga1, Yuki Hayashi1
1Division of Molecular Biology, Department of Biochemistry and Molecular Biology , Kobe University Graduate School of Medicine , 7-5-1 Kusunoki-cho , Chuo-ku, Kobe 650-0017 , Japan.
Abstract:
The ras oncogene products (H-Ras, K-Ras, and N-Ras) have been regarded as some of the most promising targets for anticancer drug discovery because their activating mutations are frequently found in human cancers. Nonetheless, molecular targeted therapy for them is currently unavailable. Here, we report the discovery of a small-molecule compound carrying a naphthalene ring, named KBFM123, which binds to the GTP-bound form of H-Ras. The solution structure of its complex with the guanosine 5'-(β,γ-imide) triphosphate-bound form of H-RasT35S (H-RasT35S·GppNHp) indicates that the naphthalene ring of KBFM123 interacts directly with a hydrophobic pocket located between switch I and switch II and allosterically inhibits the effector interaction by inducing conformational changes in switch I and its flanking region in strand β2, which are directly involved in recognition of the effector molecules, including c-Raf-1. In particular, Asp38 of H-Ras, a crucial residue for the interaction with c-Raf-1 via the formation of a salt bridge with Arg89 of the Ras-binding domain (RBD) of c-Raf-1, shows a drastic conformational change: its side chain orients toward the opposite direction. Consistent with these results, KBFM123 exhibits an activity to inhibit, albeit weakly, the association of H-RasG12V·GppNHp with the c-Raf-1 RBD. The binding of the naphthalene ring to the hydrophobic pocket of H-RasT35S·GppNHp is further supported by nuclear magnetic resonance analyses showing that two other naphthalene-containing compounds with distinct structures also exhibit similar binding properties with KBFM123. These results indicate that the naphthalene ring could become a promising scaffold for the development of Ras inhibitors.
Insights
Researchers discovered KBFM123, a novel small-molecule compound that binds to the GTP-bound form of H-Ras. This naphthalene-containing molecule allosterically inhibits Ras effector interactions, offering a potential scaffold for anticancer drug development.
Area of Science:
- Oncology
- Molecular Biology
- Drug Discovery
Background:
- Ras oncogene products (H-Ras, K-Ras, N-Ras) are frequent targets in human cancers.
- Activating mutations in Ras proteins drive cancer development.
- Currently, no molecular targeted therapies exist for Ras proteins.
Purpose of the Study:
- To discover and characterize small-molecule inhibitors targeting Ras proteins.
- To investigate the binding mechanism and allosteric inhibition of H-Ras by a novel compound.
Main Methods:
- Solution structure determination of the H-RasT35S·GppNHp-KBFM123 complex.
- Analysis of allosteric inhibition of effector interactions.
- Nuclear magnetic resonance (NMR) spectroscopy to confirm binding properties.
Main Results:
- A naphthalene-containing compound, KBFM123, binds to the GTP-bound form of H-Ras.
- KBFM123 allosterically inhibits effector binding, including c-Raf-1, by inducing conformational changes.
- NMR studies confirmed the binding of naphthalene-containing compounds to a hydrophobic pocket in H-Ras.
Conclusions:
- The naphthalene ring is a promising scaffold for developing novel Ras inhibitors.
- KBFM123 demonstrates a new strategy for targeting Ras proteins in cancer therapy.
- Further development of naphthalene-based compounds could lead to effective Ras-targeted anticancer drugs.
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