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Learning Peptide Recognition Rules for a Low-Specificity Protein

Protein Sci. 2020; 
Lucas C Wheeler, Arden Perkins, Caitlyn E Wong, Michael J Harms
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Peptide Synthesis … 1) EP6 EP7 Additional File 3. Quality control reports for custom synthesized peptides provided by GenScript. (AG) HPLC and MS reports for peptides EP1-7 described in Table 1. (top) Reversed-phase high performance liquid chromatography analysis of peptide purity … Get A Quote

摘要

Many proteins interact with short linear regions of target proteins. For some proteins, however, it is difficult to identify a well-defined sequence motif that defines its target peptides. To overcome this difficulty, we used supervised machine learning to train a model that treats each peptide as a collection of easily-calculated biochemical features rather than as an amino acid sequence. As a test case, we dissected the peptide-recognition rules for human S100A5 (hA5), a low-specificity calcium binding protein. We trained a Random Forest model against a recently released, high-throughput phage display dataset collected for hA5. The model identifies hydrophobicity and shape complementarity, rather than polar c... More

关键词

S100 proteins, X-ray crystallography, binding specificity, hydrophobicity, machine learning, peptides