Related Experiment Video
Updated: May 14, 2026

Application of I TASSER, trRosetta, UCSF Chimera, HADDOCK server, and HEX loria for De Novo and In Silico Design of Proteins
Published on: July 8, 2025
Prediction of structure of human WNT-CRD (FZD) complex for computational drug repurposing
Qurrat U Ain1, Umair Seemab, Sajid Rashid
1Department of Biosciences, COMSATS Institute of Information Technology, Islamabad, Pakistan.
Abstract:
The observed genetic alterations of various extracellular and intracellular WNT (Wingless, Int-1 proto-oncogene) signaling components can result in an increase or decrease in gene expression, and hence can be obstructed proficiently. These genetics target sites may include the prevention of WNT-FZD (Frizzled) binding, destruction of β-catenin and formation of Axin, APC and GSK-3β complex. Hence, the localized targeting of these interacting partners can help in devising novel inhibitors against WNT signaling. Our present study is an extension of our previous work, in which we proposed the co-regulated expression pattern of the WNT gene cluster (WNT-1, WNT-6, WNT-10A and WNT-10B) in human breast carcinoma. We present here the computationally modeled three dimensional structure of human WNT-1 in complex with the FZD-1 CRD (Cysteine Rich Domain) receptor. The dimeric cysteine-rich domain was found to fit into the evolutionarily conserved U-shaped groove of WNT protein. The two ends of the U- shaped cleft contain N-terminal and C-terminal hydrophobic residues, thus providing a strong hydrophobic moiety for the frizzled receptor and serving as the largest binding pocket for WNT-FZD interaction. Detailed structural analysis of this cleft revealed a maximum atomic distance of ~28 Å at the surface, narrowing down to ~17 Å and again increasing up to ~27 Å at the bottom. Altogether, structural prediction analysis of WNT proteins was performed to reveal newer details about post-translational modification sites and to map the novel pharmacophore models for potent WNT inhibitors.
Insights
This study models the 3D structure of human WNT-1 bound to FZD-1, revealing a U-shaped groove crucial for WNT signaling. This finding aids in developing new inhibitors targeting WNT pathway dysregulation in diseases like breast cancer.
Area of Science:
- Molecular Biology
- Structural Biology
- Biochemistry
Background:
- WNT (Wingless, Int-1 proto-oncogene) signaling pathway alterations are implicated in various diseases, including human breast carcinoma.
- Targeting WNT signaling components, such as preventing WNT-Frizzled (FZD) binding or disrupting the β-catenin complex, offers therapeutic potential.
Purpose of the Study:
- To computationally model the three-dimensional structure of human WNT-1 in complex with the FZD-1 Cysteine Rich Domain (CRD).
- To identify key structural features and binding interactions between WNT-1 and FZD-1 for novel inhibitor design.
Main Methods:
- Computational modeling of the human WNT-1/FZD-1 CRD complex.
- Detailed analysis of the WNT-1 protein structure and its interaction interface with FZD-1.
- Identification of potential binding pockets and pharmacophore features.
Main Results:
- The dimeric FZD-1 CRD fits into a conserved U-shaped groove on the WNT-1 protein.
- Hydrophobic residues at the ends of the groove form a strong binding interaction with the Frizzled receptor.
- The binding cleft dimensions were characterized, ranging from ~17 Å to ~28 Å.
Conclusions:
- The structural model provides insights into the WNT-1/FZD-1 interaction mechanism.
- The identified binding pocket and pharmacophore features can guide the development of potent WNT signaling inhibitors.
- This research extends previous work on WNT gene cluster co-regulation in breast cancer.
Related Concept Videos
Canonical Wnt Signaling Pathway
Non-Canonical Wnt Signaling Pathways
G Protein-coupled Receptors
GPCRs are also called heptahelical, 7TM, or serpentine receptors, and consist of seven (H1-H7) transmembrane alpha-helices that span the bilayer to form a cylindrical core. The transmembrane helices are connected by three extracellular loops and three...
Structure-Activity Relationships and Drug Design
SAR studies the intricate relationship between a drug's chemical structure and biological activity. It focuses on understanding how modifications to a drug's structure can influence its...