Computational Design and Evaluation of ScFv-IFN-B Fusion Protein against HER1-positive Breast Cancer
Keywords:
Breast cancer, Fusion protein, Human Epidermal Growth Factor Receptor 1 (HER1), Interferon Beta (IFN-β), immunocytokine, Single-chain Variable Fragment (ScFv).Abstract
Objective: To computationally design immunocytokines capable of targeting cancer cell antigens and modulating the immune response, representing a promising therapeutic approach for HER1-positive breast cancer
Methodology: This study was conducted at the National Center of Excellence, Molecular Biology, University of Punjab, Lahore, between 2021 and 2022. This is an in silico study in which a novel immunocytokine was engineered by linking an anti-EGFR/HER1 single-chain variable fragment to interferon-?. In this design, the ScFv moiety targets HER1-positive tumor cells, while the IFN-? domain retains its natural specificity for IFNAR1/IFNAR2 and is intended to provide localized immune-modulatory signaling at the tumor site. Sequence data for the ScFv and for IFN-? were concatenated to yield the ScFv-IFN-? design. Physicochemical metrics, including molecular weight, extinction coefficient, and instability index, were calculated using ProtParam and SOLpro. We predicted the 3D conformation using AlphaFold, followed by refinement with GalaxyRefine. We assessed structural quality using PROCHECK and RAMPAGE. Potential allergenic sites were mapped using AlgPred, and the corresponding mRNA secondary structure was analyzed with RNAfold. Protein-receptor interactions were examined through docking on the HDOCK server.
Results: The fused protein displayed acceptable physicochemical characteristics, retained a plausible and well-folded conformation, maintained a robust mRNA secondary structure, and demonstrated favorable docking poses for both HER1 and interferon receptors. Stability metrics from the dynamic simulations corroborated these findings.
Conclusion: The ScFv–IFN-? fusion protein emerges as a theoretically interesting design for targeted therapy against HER1-positive breast cancer, but the evidence at this stage is purely computational.
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