Deciphering Molecular Charge Anisotropy: The Case of Antibody Solutions

Electrostatic interactions fundamentally govern the structure, stability, and dynamics of charged (bio)matter, yet the impact of heterogeneous and anisotropic charge distributions on the behavior of protein solutions remains elusive. Here, we introduce a versatile multiscale framework that directly connects molecular-level electrostatics to collective properties via a colloid-inspired coarse-grained modeling combined with neural network-assisted optimization. Using monoclonal antibodies as a model system, our inverse design approach identifies charge patterns capable of reliably reproducing experimental structure factors, osmotic compressibility and collective diffusion coefficients in a wide region of protein concentrations. By further inspecting our data, we find specific physical features and spatial arrangements of localized charge patches that significantly influence the solution structure, uncovering clear design principles. The strategy we develop provides a transferable pathway to decode charge-driven interactions in complex biomolecules and, more generally, in heterogeneously charged soft-matter systems, with relevance to protein formulation and biomaterials engineering.

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Publication Details

Journal
Small
Published
2026-09-24
DOI
https://doi.org/10.1002/smll.75728
Primary Topic
Electrostatics and Colloid Interactions
Type
article
Field-Weighted Citation Impact
0.00
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article

Deciphering Molecular Charge Anisotropy: The Case of Antibody Solutions

Peter Schurtenberger, Susana Marín-Aguilar, Emanuela Zaccarelli, Anna Stradner et al.
Small
Electrostatics and Colloid Interactions
article

Deciphering Molecular Charge Anisotropy: The Case of Antibody Solutions

Peter Schurtenberger, Susana Marín-Aguilar, Emanuela Zaccarelli, Anna Stradner, Fabrizio Camerin
article en

Abstract

Electrostatic interactions fundamentally govern the structure, stability, and dynamics of charged (bio)matter, yet the impact of heterogeneous and anisotropic charge distributions on the behavior of protein solutions remains elusive. Here, we introduce a versatile multiscale framework that directly connects molecular-level electrostatics to collective properties via a colloid-inspired coarse-grained modeling combined with neural network-assisted optimization. Using monoclonal antibodies as a model system, our inverse design approach identifies charge patterns capable of reliably reproducing experimental structure factors, osmotic compressibility and collective diffusion coefficients in a wide region of protein concentrations. By further inspecting our data, we find specific physical features and spatial arrangements of localized charge patches that significantly influence the solution structure, uncovering clear design principles. The strategy we develop provides a transferable pathway to decode charge-driven interactions in complex biomolecules and, more generally, in heterogeneously charged soft-matter systems, with relevance to protein formulation and biomaterials engineering.

Small
Lund University (SE), Institute for Complex Systems (IT), Sapienza University of Rome (IT)
Openalex Percentile: Top 80%
Electrostatics and Colloid Interactions
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Deciphering Molecular Charge Anisotropy: The Case of Antibody Solutions — Peter Schurtenberger, Susana Marín-Aguilar, et al. · Small (2026) | TGRS Research Map | TGRS