The SOS1 Inhibitor MRTX0902 Blocks KRAS Activation and Demonstrates Antitumor Activity in Cancers Dependent on KRAS

Niranjan Sudhakar1, Larry Yan1, Fadia Qiryaqos1

  • 1Mirati Therapeutics, Inc., San Diego, California.

PubMed

Insights

A novel SOS1 inhibitor, MRTX0902, shows promise in combination therapy for KRAS-mutant cancers. It enhances KRAS G12C inhibitor efficacy and offers new strategies for targeted cancer treatment.

Area of Science:

  • Oncology
  • Molecular Biology
  • Drug Discovery

Background:

  • KRAS mutations drive cancer by activating the RTK/MAPK pathway.
  • Son of Sevenless homolog 1 (SOS1) is a key guanine nucleotide exchange factor (GEF) for RAS proteins and a potential therapeutic target.

Purpose of the Study:

  • To identify and characterize a novel SOS1 inhibitor, MRTX0902.
  • To evaluate the efficacy of MRTX0902 as a monotherapy and in combination with other targeted agents for KRAS-mutant cancers.

Main Methods:

  • Structure-based drug discovery was employed to identify MRTX0902.
  • Preclinical studies involved cancer cell lines and xenograft models (NSCLC, colorectal cancer).
  • Combination therapies included MRTX0902 with adagrasib (KRAS G12C inhibitor), EGFR inhibitors, and RAF/MEK inhibitors.

Main Results:

  • MRTX0902 selectively inhibits SOS1, disrupting KRAS:SOS1 interaction and showing anti-proliferative effects.
  • Combination of MRTX0902 with adagrasib demonstrated augmented antitumor activity in KRAS G12C-mutant xenografts.
  • Pharmacogenomic profiling identified potential resistance mechanisms and co-dependencies (cell cycle genes, SOS2, NF1, PTEN).
  • Vertical inhibition of the RTK/MAPK pathway with MRTX0902 and other inhibitors improved antitumor responses.

Conclusions:

  • MRTX0902 is a potent SOS1 inhibitor with potential clinical applications.
  • Dual inhibition of SOS1 and KRAS G12C, along with other combination strategies, shows promise for treating KRAS-MAPK pathway-driven cancers.
  • Understanding SOS1 and RTK/MAPK pathway biology is crucial for advancing targeted cancer therapy.

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