Homology of homologous knotted proteins

Author:

Benjamin Katherine1,Mukta Lamisah1,Moryoussef Gabriel1,Uren Christopher1,Harrington Heather A.12ORCID,Tillmann Ulrike13,Barbensi Agnese14ORCID

Affiliation:

1. Mathematical Institute, University of Oxford, Oxford OX2 6GG, UK

2. Wellcome Centre for Human Genetics, University of Oxford, Oxford OX3 7BN, UK

3. Isaac Newton Institute for Mathematical Sciences, University of Cambridge, Cambridge CB3 0EH, UK

4. School of Mathematics and Statistics, University of Melbourne, Melbourne, Victoria 3010, Australia

Abstract

Quantification and classification of protein structures, such as knotted proteins, often requires noise-free and complete data. Here, we develop a mathematical pipeline that systematically analyses protein structures. We showcase this geometric framework on proteins forming open-ended trefoil knots, and we demonstrate that the mathematical tool, persistent homology, faithfully represents their structural homology. This topological pipeline identifies important geometric features of protein entanglement and clusters the space of trefoil proteins according to their depth. Persistence landscapes quantify the topological difference between a family of knotted and unknotted proteins in the same structural homology class. This difference is localized and interpreted geometrically with recent advancements in systematic computation of homology generators. The topological and geometric quantification we find is robust to noisy input data, which demonstrates the potential of this approach in contexts where standard knot theoretic tools fail.

Funder

Royal Society

Engineering and Physical Sciences Research Council

Publisher

The Royal Society

Subject

Biomedical Engineering,Biochemistry,Biomaterials,Bioengineering,Biophysics,Biotechnology

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