Probing polymorph binding preference of CaCO3 biomineralization peptides through machine learning

Author:

Nidoy Andre Leopold S1,Janairo Jose Isagani B2ORCID

Affiliation:

1. Department of Chemical Engineering, Gokongwei College of Engineering, De La Salle University , 2401 Taft Avenue, Manila 0922, National Capital Region , Philippines

2. Department of Biology, College of Science, De La Salle University , 2401 Taft Avenue, Manila 0922, National Capital Region , Philippines

Abstract

Abstract An exploratory machine learning (ML) classification model that seeks to examine CaCO3 polymorph selection is presented. The ML model can distinguish if a given peptide sequence binds with calcite or aragonite, polymorphs of CaCO3. The classifier, which was created using SVM and amino acid chemical composition as the input descriptors, yielded satisfactory performance in the classification task, as characterized by AUC = 0.736 and F1 = 0.800 in the test set. Model optimization revealed that tiny, aliphatic, aromatic, acidic, and basic residues are essential descriptors for discriminating aragonite biomineralization peptides from calcite. The presented model offers valuable insights on the significant chemical attributes of biomineralization peptides involved in polymorph binding preference. This can deepen our understanding about the biomineralization phenomenon and may be deployed in the future for the creation biomimetic materials.

Publisher

Oxford University Press (OUP)

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