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Updated: Apr 16, 2026

Visualizing Scar Development Using SCAD Assay - An Ex-situ Skin Scarring Assay
Published on: April 28, 2022
Multi-omics and AI-guided discovery and validation of sisomicin as a COPA-targeting agent for pathological scar
Pengfei Li1, Zucheng Luo2, Mohyeddin Ali1
1Department of Plastic Surgery, Zhongshan Hospital, Fudan University, Shanghai, China.
Background:
Pathological scars, including hypertrophic scars and keloids, are fibrotic skin disorders marked by excessive collagen deposition and persistent inflammation, yet effective treatments remain limited.
Methods:
We integrated single-cell RNA sequencing, bulk transcriptomic datasets, and artificial intelligence (AI)-driven machine learning and deep learning to identify molecular drivers of scarring, and subsequently validated our findings using both cellular and animal models.
Results:
High-dimensional weighted gene co-expression network analysis (hdWGCNA) of scar-associated macrophage subsets revealed COPI coat complex alpha subunit (COPA) as a hub gene correlated with macrophage and fibroblast infiltration. AI-guided drug screening and molecular docking identified sisomicin, an aminoglycoside antibiotic, as a potential COPA-targeting agent. Functional assays in human hypertrophic scar-derived fibroblasts (HHFs) and TGF-β1-stimulated NFs showed that sisomicin inhibited proliferation, migration, and collagen synthesis, while increasing ROS and apoptosis. In bleomycin- and traction-induced mouse models, sisomicin reduced dermal thickening, collagen deposition, and COPA expression.
Conclusion:
This multi-omics and AI-based framework uncovers COPA as a key regulator of pathological scars and highlights sisomicin as a promising therapeutic candidate, offering a broadly applicable strategy for anti-fibrotic drug discovery.
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