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Updated: Jun 12, 2026

Computational Prediction of Amino Acid Preferences of Potentially Multispecific Peptide-Binding Domains Involved in Protein-Protein Interactions
Published on: January 26, 2024
All-atom structural models for complexes of insulin-like growth factors IGF1 and IGF2 with their cognate receptor
Harish Vashisth1, Cameron F Abrams
1Department of Chemical and Biological Engineering, Drexel University, 3141 Chestnut Street, Philadelphia, PA 19104, USA. hl332@drexel.edu
Abstract:
Type 1 insulin-like growth factor receptor (IGF1R) is a membrane-spanning glycoprotein of the insulin receptor family that has been implicated in a variety of cancers. The key questions related to molecular mechanisms governing ligand recognition by IGF1R remain unanswered, partly due to the lack of testable structural models of apo or ligand-bound receptor complexes. Using a homology model of the IGF1R ectodomain IGF1RDeltabeta, we present the first experimentally consistent all-atom structural models of IGF1/IGF1RDeltabeta and IGF2/IGF1RDeltabeta complexes. Our explicit-solvent molecular dynamics (MD) simulation of apo-IGF1RDeltabeta shows that it displays asymmetric flexibility mechanisms that result in one of two binding pockets accessible to growth factors IGF1 and IGF2, as demonstrated via an MD-assisted Monte Carlo docking procedure. Our MD-generated ensemble of structures of apo and IGF1-bound IGF1RDeltabeta agrees reasonably well with published small-angle X-ray scattering data. We observe simultaneous contacts of each growth factor with sites 1 and 2 of IGF1R, suggesting cross-linking of receptor subunits. Our models provide direct evidence in favor of suggested electrostatic complementarity between the C-domain (IGF1) and the cysteine-rich domain (IGF1R). Our IGF1/IGF1RDeltabeta model provides structural bases for the observation that a single IGF1 molecule binds to IGF1RDeltabeta at low concentrations in small-angle X-ray scattering studies. We also suggest new possible structural bases for differences in the affinities of insulin, IGF1, and IGF2 for their noncognate receptors.
Insights
Structural models reveal how insulin-like growth factor 1 receptor (IGF1R) binds IGF1 and IGF2. Molecular dynamics simulations show asymmetric flexibility and cross-linking, explaining ligand recognition and affinity differences.
Area of Science:
- Biochemistry
- Structural Biology
- Molecular Modeling
Background:
- Type 1 insulin-like growth factor receptor (IGF1R) is crucial in cancer, but its ligand recognition mechanisms are unclear.
- Lack of structural models for apo or ligand-bound IGF1R hinders understanding.
Purpose of the Study:
- To develop the first experimentally consistent all-atom structural models of IGF1/IGF1R and IGF2/IGF1R complexes.
- To elucidate molecular mechanisms of ligand recognition by IGF1R.
Main Methods:
- Homology modeling of the IGF1R ectodomain (IGF1RDeltabeta).
- Explicit-solvent molecular dynamics (MD) simulations of apo and ligand-bound states.
- MD-assisted Monte Carlo docking.
- Comparison with small-angle X-ray scattering data.
Main Results:
- MD simulations revealed asymmetric flexibility in apo-IGF1RDeltabeta, creating accessible binding pockets.
- Models showed simultaneous contacts of IGF1/IGF2 with sites 1 and 2 of IGF1R, suggesting cross-linking.
- Evidence supports electrostatic complementarity between IGF1's C-domain and IGF1R's cysteine-rich domain.
- Models explain single IGF1 binding at low concentrations and potential affinity differences for related ligands.
Conclusions:
- The study provides novel structural insights into IGF1R-ligand interactions.
- These models offer a basis for understanding IGF1R's role in cancer and differential ligand binding.
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