Protein developability is requisite for use in therapeutic, diagnostic, or industrial applications. Many developability assays are low throughput, which limits their utility to the later stages of protein discovery and evolution. Recent approaches enable experimental or computational assessment of many more variants, yet the breadth of applicability across protein families and developability metrics is uncertain. Here, three library-scale assays-on-yeast protease, split green fluorescent protein (GFP), and non-specific binding-were evaluated for their ability to predict two key developability outcomes (thermal stability and recombinant expression) for the small protein scaffolds affibody and fibronectin. The assays' predictive capabilities were assessed via both linear correlation and machine learning models trained on the library-scale assay data. The on-yeast protease assay is highly predictive of thermal stability for both scaffolds, and the split-GFP assay is informative of affibody thermal stability and expression. The library-scale data was used to map sequence-developability landscapes for affibody and fibronectin binding paratopes, which guides future design of variants and libraries.
Sequence-developability mapping of affibody and fibronectin paratopes via library-scale variant characterization.
通过文库规模的变异表征,对亲和体和纤连蛋白互补位进行序列开发性映射
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作者:Nielsen Gregory H, Schmitz Zachary D, Hackel Benjamin J
| 期刊: | Protein Engineering Design & Selection | 影响因子: | 3.400 |
| 时间: | 2024 | 起止号: | 2024 Jan 29; 37:gzae010 |
| doi: | 10.1093/protein/gzae010 | 研究方向: | 免疫/内分泌 |
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