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In silico discovery of small-molecule Ras inhibitors that display antitumor activity by blocking the Ras-effector
Fumi Shima1, Yoko Yoshikawa, Min Ye
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. sfumi@med.kobe-u.ac.jp
Abstract:
Mutational activation of the Ras oncogene products (H-Ras, K-Ras, and N-Ras) is frequently observed in human cancers, making them promising anticancer drug targets. Nonetheless, no effective strategy has been available for the development of Ras inhibitors, partly owing to the absence of well-defined surface pockets suitable for drug binding. Only recently, such pockets have been found in the crystal structures of a unique conformation of Ras⋅GTP. Here we report the successful development of small-molecule Ras inhibitors by an in silico screen targeting a pocket found in the crystal structure of M-Ras⋅GTP carrying an H-Ras-type substitution P40D. The selected compound Kobe0065 and its analog Kobe2602 exhibit inhibitory activity toward H-Ras⋅GTP-c-Raf-1 binding both in vivo and in vitro. They effectively inhibit both anchorage-dependent and -independent growth and induce apoptosis of H-ras(G12V)-transformed NIH 3T3 cells, which is accompanied by down-regulation of downstream molecules such as MEK/ERK, Akt, and RalA as well as an upstream molecule, Son of sevenless. Moreover, they exhibit antitumor activity on a xenograft of human colon carcinoma SW480 cells carrying the K-ras(G12V) gene by oral administration. The NMR structure of a complex of the compound with H-Ras⋅GTP(T35S), exclusively adopting the unique conformation, confirms its insertion into one of the surface pockets and provides a molecular basis for binding inhibition toward multiple Ras⋅GTP-interacting molecules. This study proves the effectiveness of our strategy for structure-based drug design to target Ras⋅GTP, and the resulting Kobe0065-family compounds may serve as a scaffold for the development of Ras inhibitors with higher potency and specificity.
Insights
Researchers developed novel small-molecule Ras inhibitors targeting a unique Ras⋅GTP pocket. These inhibitors show promise in blocking cancer cell growth and tumor development, offering a new strategy for anticancer drug design.
Area of Science:
- Oncology
- Molecular Biology
- Drug Discovery
Background:
- Mutations in Ras oncogenes (H-Ras, K-Ras, N-Ras) are common in human cancers.
- Developing effective Ras inhibitors has been challenging due to the lack of suitable drug-binding pockets.
- Recent discoveries of unique Ras⋅GTP conformations revealed potential binding sites.
Purpose of the Study:
- To develop small-molecule inhibitors targeting a specific Ras⋅GTP pocket.
- To evaluate the efficacy of these inhibitors in preclinical cancer models.
- To provide a molecular basis for Ras⋅GTP-targeted drug design.
Main Methods:
- In silico screening targeting a pocket in M-Ras⋅GTP (P40D substitution).
- In vitro and in vivo assays to assess inhibition of H-Ras⋅GTP-c-Raf-1 binding.
- Cellular assays for anchorage-dependent/independent growth, apoptosis, and downstream signaling.
- Xenograft studies in mice with human colon carcinoma cells.
- NMR structural analysis of compound-Ras⋅GTP complex.
Main Results:
- Identified compound Kobe0065 and analog Kobe2602 as inhibitors of H-Ras⋅GTP-c-Raf-1 binding.
- Demonstrated inhibition of cancer cell growth and induction of apoptosis in H-ras(G12V)-transformed cells.
- Observed down-regulation of key signaling molecules (MEK/ERK, Akt, RalA, Son of sevenless).
- Showed significant antitumor activity in a xenograft model of K-ras(G12V)-driven colon cancer.
- NMR structure confirmed compound binding to a Ras⋅GTP surface pocket, explaining inhibition.
Conclusions:
- The study successfully developed small-molecule Ras inhibitors using a structure-based drug design strategy.
- Kobe0065-family compounds effectively inhibit cancer cell proliferation and tumor growth.
- These compounds represent a promising scaffold for developing more potent and specific Ras inhibitors.
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