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Novel druggable space in human KRAS G13D discovered using structural bioinformatics and a P-loop targeting monoclonal
Oscar Jungholm1, Carolina Trkulja2,3, Martin Moche4
1Department of Physiology and Pharmacology, Karolinska Institutet, 171 77, Stockholm, Sweden.
Abstract:
KRAS belongs to a family of small GTPases that act as binary switches upstream of several signalling cascades, controlling proliferation and survival of cells. Mutations in KRAS drive oncogenesis, especially in pancreatic, lung, and colorectal cancers (CRC). Although historic attempts at targeting mutant KRAS with small molecule inhibitors have proven challenging, there are recent successes with the G12C, and G12D mutations. However, clinically important RAS mutations such as G12V, G13D, Q61L, and A146T, remain elusive drug targets, and insights to their structural landscape is of critical importance to develop novel, and effective therapeutic concepts. We present a fully open, P-loop exposing conformer of KRAS G13D by X-ray crystallography at 1.4-2.4 Å resolution in Mg2+-free phosphate and malonate buffers. The G13D conformer has the switch-I region displaced in an upright position leaving the catalytic core fully exposed. To prove that this state is druggable, we developed a P-loop-targeting monoclonal antibody (mAb). The mAb displayed high-affinity binding to G13D and was shown using high resolution fluorescence microscopy to be spontaneously taken up by G13D-mutated HCT 116 cells (human CRC derived) by macropinocytosis. The mAb inhibited KRAS signalling in phosphoproteomic and genomic studies. Taken together, the data propose novel druggable space of G13D that is reachable in the cellular context. It is our hope that these findings will stimulate attempts to drug this fully open state G13D conformer using mAbs or other modalities.
Insights
Researchers identified a novel, open conformation of KRAS G13D, a key cancer-driving mutation. A developed antibody targets this state, demonstrating its druggability and potential for new colorectal cancer therapies.
Area of Science:
- Oncology
- Molecular Biology
- Structural Biology
Background:
- KRAS mutations drive oncogenesis in various cancers, including colorectal cancer (CRC).
- Targeting KRAS mutations like G13D has been challenging, necessitating new therapeutic strategies.
- Understanding the structural landscape of elusive KRAS mutations is critical for drug development.
Purpose of the Study:
- To characterize a novel, fully open conformation of KRAS G13D.
- To investigate the druggability of this open KRAS G13D state.
- To develop and validate a therapeutic antibody targeting KRAS G13D.
Main Methods:
- X-ray crystallography was used to determine the structure of KRAS G13D at 1.4–2.4 Å resolution.
- A P-loop-targeting monoclonal antibody (mAb) was developed.
- High-resolution fluorescence microscopy, macropinocytosis assays, phosphoproteomic, and genomic studies were employed.
Main Results:
- A fully open, P-loop exposing conformer of KRAS G13D was elucidated.
- The KRAS G13D open conformer exhibits an upright switch-I region, exposing the catalytic core.
- The developed mAb showed high-affinity binding to KRAS G13D and was internalized by G13D-mutated CRC cells.
- The mAb effectively inhibited KRAS signaling in cellular assays.
Conclusions:
- The study presents a novel, druggable open conformation of KRAS G13D.
- This conformation is accessible within the cellular context, offering new therapeutic opportunities.
- The findings support the development of antibody-based or other modalities targeting this KRAS G13D state for cancer treatment.
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