Joint Geometric-Chemical Distance for Protein Surfaces

Fuente: arXiv
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Autores principales: Swami, Himanshu, McBride, John M., Eckmann, Jean-Pierre, Tlusty, Tsvi
Formato: Preprint
Publicado: 2026
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author Swami, Himanshu
McBride, John M.
Eckmann, Jean-Pierre
Tlusty, Tsvi
author_facet Swami, Himanshu
McBride, John M.
Eckmann, Jean-Pierre
Tlusty, Tsvi
contents Protein function is executed at the molecular surface, where shape and chemistry act together to govern interaction. Yet most comparison methods treat these aspects separately, privileging either global fold or local descriptors and missing their coupled organization. Here we introduce IFACE (Intrinsic Field-Aligned Coupled Embedding), a correspondence-based framework that aligns protein surfaces through probabilistic coupling of intrinsic geometry with spatially distributed chemical fields. From this alignment, we derive a joint geometric--chemical distance that integrates structural and physicochemical discrepancies within a single formulation. Across diverse proteins, this distance separates conformational variability from true structural divergence more effectively than fold-based similarity measures. Applied to the cytochrome P450 family, it reveals coherent family-level organization and identifies conserved buried catalytic pockets despite the complex topology. By linking interpretable surface correspondences with a unified distance, IFACE establishes a principled basis for comparing protein interfaces and detecting functionally related interaction patches across proteins.
format Preprint
id arxiv_https___arxiv_org_abs_2603_09860
institution arXiv
publishDate 2026
record_format arxiv
spellingShingle Joint Geometric-Chemical Distance for Protein Surfaces
Swami, Himanshu
McBride, John M.
Eckmann, Jean-Pierre
Tlusty, Tsvi
Biomolecules
Biological Physics
Protein function is executed at the molecular surface, where shape and chemistry act together to govern interaction. Yet most comparison methods treat these aspects separately, privileging either global fold or local descriptors and missing their coupled organization. Here we introduce IFACE (Intrinsic Field-Aligned Coupled Embedding), a correspondence-based framework that aligns protein surfaces through probabilistic coupling of intrinsic geometry with spatially distributed chemical fields. From this alignment, we derive a joint geometric--chemical distance that integrates structural and physicochemical discrepancies within a single formulation. Across diverse proteins, this distance separates conformational variability from true structural divergence more effectively than fold-based similarity measures. Applied to the cytochrome P450 family, it reveals coherent family-level organization and identifies conserved buried catalytic pockets despite the complex topology. By linking interpretable surface correspondences with a unified distance, IFACE establishes a principled basis for comparing protein interfaces and detecting functionally related interaction patches across proteins.
title Joint Geometric-Chemical Distance for Protein Surfaces
topic Biomolecules
Biological Physics
url https://arxiv.org/abs/2603.09860