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The Journal of Physical Chemistry B· 2026Q1

Mapping the Free Energy Landscape of Protein Adsorption at Solid-Liquid Interfaces

Marius Fiedler, Thomas Waluga, Irina V. Smirnova, Sven Jakobtorweihen

Short summary

Molecular dynamics simulations with umbrella sampling reveal a 2D free-energy landscape of bovine serum albumin adsorption on Q Sepharose FF, showing no conformational changes and capturing adsorption across all sites and orientations.

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Key points

  • Developed a 2D free-energy landscape for BSA adsorption on Q Sepharose FF.
  • Utilized molecular dynamics simulations combined with umbrella sampling.
  • No protein conformational changes were observed during adsorption.
  • The landscape captures adsorption across all protein sites and orientations.

AI-generated from the title and abstract; the full text is not read.

Abstract

Abstract Protein adsorption at solid–liquid interfaces plays a crucial role in many biological and technological processes, including the design of biomaterials, biosensor performance, and biocatalysis. Understanding how proteins interact with surfaces is essential for controlling biofouling, optimizing medical implants, and engineering functional interfaces. Despite its significance, predicting adsorption behavior from molecular-level interactions remains challenging. In this work, we performed molecular dynamics simulations using umbrella sampling to sample the two-dimensional free-energy surface of bovine serum albumin adsorption on the anionic adsorbent Q Sepharose FF. By combining molecular dynamics simulations with enhanced free energy sampling techniques, we systematically explored the orientations and positions of the protein near the surface. No conformational changes were observed within the examined time scales. We obtained a comprehensive free-energy map that captures the adsorption behavior across the entire protein surface. This approach provides access to the adsorption free energy while accounting for contributions from all possible adsorption sites and orientations. The resulting landscape offers a detailed molecular-level understanding of how proteins interact with surfaces.

The authors' abstract, as published at the source. The Journal of Physical Chemistry B, 2026 · DOI ↗

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Field: Surfaces, Coatings and Films

Surfaces, Coatings and FilmsMaterials Science