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Updated: Jan 31, 2026

Spatiotemporal Control of Protein Activity through Optogenetic Allosteric Regulation
Published on: October 4, 2024
Allosteric Binding-Mediated Suppression on Activity of G12D KRAS Recognized via Markov State Model and Communication
Jianzhong Chen1, Jian Wang1, Wei Wang1
1School of Science, Shandong Jiaotong University, Jinan 250357, China.
Abstract:
The KRAS G12D mutation is one of the most common oncogenic lesions in human tumors, especially in pancreatic ductal adenocarcinoma. The monobodies 12D1 and 12D5 exhibit high selectivity for the G12D mutant of KRAS compared to the wild-type (WT) form. However, the structural and dynamic factors underlying this specificity are still not fully understood. To explore this, we analyzed the transition direction of conformations, allosteric communication pathways, and residue-residue interaction networks at the protein-protein interface. The G12D mutation causes the switch regions to transition from a closed state to an open state. Binding of 12D1 and 12D5 restores this abnormal transition. Additionally, the G12D mutation disrupts the regular communication pathway from the allosteric site α3 to the switch regions (SW I and SW II) observed in WT KRAS. Binding of 12D1 and 12D5 to the allosteric site restores this communication pathway to its original state. Detailed protein-protein interaction network analyses further reveal that 12D1 and 12D5 form two specific hydrogen bonds with the backbone carboxylate of D12. These hydrogen bonds not only strengthen the hydrophobic contacts at the monobody-KRAS interface but also correct the abnormal conformational equilibrium and restore the disrupted allosteric circuitry. Overall, our findings confirm that D12 is a structurally and functionally validated anchor for the development of next-generation inhibitors targeting G12D KRAS-driven malignancies.
Insights
Monobodies 12D1 and 12D5 specifically target the KRAS G12D mutation by stabilizing its structure. This binding restores normal protein communication pathways, offering a promising strategy for G12D KRAS-driven cancers.
Area of Science:
- Oncogenic signaling pathways
- Protein-protein interactions
- Structural biology
Background:
- KRAS G12D mutations are key drivers in pancreatic cancer.
- Monobodies 12D1 and 12D5 show high selectivity for KRAS G12D.
- The precise mechanisms of this selectivity are not fully understood.
Purpose of the Study:
- To elucidate the structural and dynamic factors behind monobody selectivity for KRAS G12D.
- To analyze conformational changes, allosteric pathways, and interaction networks.
- To validate D12 as a therapeutic target anchor.
Main Methods:
- Conformational transition analysis
- Allosteric communication pathway mapping
- Protein-protein interaction network analysis
Main Results:
- KRAS G12D mutation shifts switch regions to an open state, disrupting allosteric communication.
- Monobodies 12D1 and 12D5 restore the closed state and normal communication pathways.
- Specific hydrogen bonds between monobodies and D12 stabilize the interface and correct aberrant equilibrium.
Conclusions:
- Monobodies 12D1 and 12D5 effectively target KRAS G12D by restoring normal protein dynamics and allosteric signaling.
- The D12 residue is a validated anchor for developing next-generation inhibitors against KRAS G12D malignancies.
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