Structural perspectives on recent breakthrough efforts toward direct drugging of RAS and acquired resistance
Jameela Lokhandwala1, Tracess B Smalley1, Timothy H Tran2
1Department of Molecular Oncology, H. Lee Moffitt Cancer Center and Research Institute, Tampa, FL, United States.
Abstract:
The Kirsten rat sarcoma viral oncoprotein homolog (KRAS) is currently a primary focus of oncologists and translational scientists, driven by exciting results with KRAS-targeted therapies for non-small cell lung cancer (NSCLC) patients. While KRAS mutations continue to drive high cancer diagnosis and death, researchers have developed unique strategies to target KRAS variations. Having been investigated over the past 40 years and considered "undruggable" due to the lack of pharmacological binding pockets, recent breakthroughs and accelerated FDA approval of the first covalent inhibitors targeting KRASG12C, have largely sparked further drug development. Small molecule development has targeted the previously identified primary location alterations such as G12, G13, Q61, and expanded to address the emerging secondary mutations and acquired resistance. Of interest, the non-covalent KRASG12D targeting inhibitor MRTX-1133 has shown promising results in humanized pancreatic cancer mouse models and is seemingly making its way from bench to bedside. While this manuscript was under review a novel class of first covalent inhibitors specific for G12D was published, These so-called malolactones can crosslink both GDP and GTP bound forms of G12D. Inhibition of the latter state suppressed downstream signaling and cancer cell proliferation in vitro and in mouse xenografts. Moreover, a non-covalent pan-KRAS inhibitor, BI-2865, reduced tumor proliferation in cell lines and mouse models. Finally, the next generation of KRAS mutant-specific and pan-RAS tri-complex inhibitors have revolutionized RAS drug discovery. This review will give a structural biology perspective on the current generation of KRAS inhibitors through the lens of emerging secondary mutations and acquired resistance.
Insights
Targeting Kirsten rat sarcoma viral oncoprotein homolog (KRAS) mutations, particularly KRAS G12C and G12D, shows promise in treating cancers like non-small cell lung cancer. New inhibitors offer hope against previously "undruggable" targets.
Area of Science:
- Oncology
- Structural Biology
- Drug Discovery
Background:
- Kirsten rat sarcoma viral oncoprotein homolog (KRAS) mutations are key drivers of cancer, historically considered undruggable.
- Recent breakthroughs include FDA-approved covalent inhibitors for KRAS G12C, advancing targeted cancer therapy.
- KRAS mutations contribute significantly to cancer diagnosis and mortality worldwide.
Purpose of the Study:
- To review the structural biology of current KRAS inhibitors.
- To explore strategies targeting KRAS mutations, including primary and secondary alterations.
- To discuss emerging resistance mechanisms and next-generation KRAS inhibitors.
Main Methods:
- Analysis of structural data for KRAS inhibitors.
- Review of preclinical and clinical data for KRAS-targeted therapies.
- Examination of emerging resistance mutations and their structural implications.
Main Results:
- Development of covalent inhibitors targeting KRAS G12C and novel malolactones for KRAS G12D.
- Promising results from non-covalent inhibitors like MRTX-1133 and BI-2865 in preclinical models.
- Identification of strategies to overcome acquired resistance and target secondary mutations.
Conclusions:
- Targeting KRAS mutations has evolved significantly, moving from undruggable to druggable.
- Next-generation inhibitors, including pan-RAS and mutant-specific agents, are revolutionizing RAS drug discovery.
- Structural biology insights are crucial for developing effective KRAS-targeted therapies against evolving resistance.
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