Given the crucial role of specific matrix metalloproteinases (MMPs) in the extracellular matrix, an imbalance in the regulation of activation of matrix metalloproteinase-9 (MMP-9) zymogen and inhibition of the enzyme can result in various diseases, such as cancer, neurodegenerative, and gynecological diseases. Thus, developing novel therapeutics that target MMP-9 with single-chain antibody fragments (scFvs) is a promising approach. We used fluorescent-activated cell sorting (FACS) to screen a synthetic scFv antibody library displayed on yeast for enhanced binding to MMP-9. The screened scFv mutants demonstrated improved binding to MMP-9 compared to the natural inhibitor of MMPs, tissue inhibitor of metalloproteinases (TIMPs). To identify the molecular determinants of these engineered scFv variants that affect binding to MMP-9, we used next-generation DNA sequencing and computational protein structure analysis. Additionally, a deep-learning language model was trained on the screened scFv library of variants to predict the binding affinities of scFv variants based on their CDR-H3 sequences.
Determining key residues of engineered scFv antibody variants with improved MMP-9 binding using deep sequencing and machine learning.
利用深度测序和机器学习确定具有改进的 MMP-9 结合能力的工程化 scFv 抗体变体的关键残基
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作者:Kalantar Masoud, Kalanther Ifthichar, Kumar Sachin, Buxton Elham Khorasani, Raeeszadeh-Sarmazdeh Maryam
| 期刊: | Computational and Structural Biotechnology Journal | 影响因子: | 4.100 |
| 时间: | 2024 | 起止号: | 2024 Oct 10; 23:3759-3770 |
| doi: | 10.1016/j.csbj.2024.10.005 | 研究方向: | 免疫/内分泌 |
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