MRTX1133 Suppresses ERK Signaling but Elicits Context-Dependent Antiproliferative Responses in KRAS (G12C) Cancer

Abraham C Sianoya1,2, Yan Zuo1, Cynthia V Pagba1

  • 1Department of Integrative Biology and Pharmacology, McGovern Medical School, The University of Texas Health Science Center at Houston, Houston, Texas.

Insights

The KRAS (G12D)-selective inhibitor MRTX1133 also targets KRAS (G12C) mutations, impacting cancer cell proliferation differently based on cancer type. This highlights context-dependent mechanisms in KRAS inhibition and the need for further research.

Area of Science:

  • Oncology
  • Molecular Biology
  • Drug Discovery

Background:

  • KRAS mutations are key cancer drivers, with covalent inhibitors like sotorasib and adagrasib targeting KRAS G12C.
  • Developing clinically effective allele-specific KRAS inhibitors remains challenging, necessitating deeper understanding of inhibition mechanisms.

Purpose of the Study:

  • To investigate the binding affinity and inhibitory effects of MRTX1133, a KRAS (G12D)-selective inhibitor, on KRAS (G12C) mutant cancer cells.
  • To explore the context-dependent efficacy of MRTX1133 in different cancer types harboring KRAS (G12C) mutations.

Main Methods:

  • Assessed MRTX1133 binding affinity to KRAS G12C and its impact on nucleotide exchange and MAPK signaling.
  • Evaluated MRTX1133's effect on the proliferation of KRAS (G12C) cancer cell lines (pancreatic, lung, colorectal) and xenografts.
  • Analyzed downstream effector modulation, including ribosomal protein S6.

Main Results:

  • MRTX1133 binds with high affinity to KRAS G12C, suppressing nucleotide exchange and MAPK signaling.
  • MRTX1133 robustly inhibits proliferation in KRAS (G12C) pancreatic cancer cells (MIA PaCa-2) and xenografts.
  • Minimal effects on proliferation were observed in KRAS (G12C) lung and colorectal cancer cells, linked to lack of downstream effector inhibition.

Conclusions:

  • MRTX1133 demonstrates context-dependent efficacy against KRAS (G12C) cancers, effective in pancreatic but not lung or colorectal models.
  • The differential response is attributed to context-specific downstream signaling, emphasizing the need for tailored therapeutic strategies.
  • MRTX1133 serves as a valuable chemical probe for uncovering novel insights into KRAS biology and inhibition mechanisms.

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