Polar vs Non-polar Excipients in BSA Aggregation

Abstract Purpose In recent years, there has been a rapid expansion in the development of new protein therapeutics in the pharmaceutical industry. Problematically, proteins are conformationally and colloidally marginally stable, and thus it is necessary to formulate them using buffering and stabilizing agents. Methods In this study, we use experimental and computation techniques to evaluate the aggregation pathway, as well as the stabilizing properties of a range of excipients on a model protein; bovine serum albumin (BSA). Results Our results show that polar excipients (L-arginine and trimethylamine N-oxide) decrease BSA stability, whereas non-polar excipients (L-alanine and L-valine) enhances it. To elucidate molecular mechanisms behind these trends, we constructed a multi-step unfolding and aggregation model. Upon thermal stress, the protein system is driven to form a disrupted dimer/trimer species across a steep activation energy barrier. This acts as the primary kinetic bottleneck, as once these intermediate states form sufficiently, large aggregates in tetramers and pentamers form across a significantly lower energy barrier. High temperature molecular dynamics simulations reveal that the unfolding mode of the monomer is characterized by the detachment of its C-terminus domain, creating an extended, aggregation prone structure. Crucially, in the native structure, this flexible region contains the only prominent solvent exposed hydrophobic patch on an otherwise hydrophilic protein surface. Therefore, hydrophobic excipients are predicted to interface with this hotspot, stabilizing the folded structure and suppressing downstream aggregation formation. Conclusions Overall, this work demonstrates that understanding the specific protein aggregation mechanisms is key for the rational selection of stabilizers.

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Publication Details

Journal
Pharmaceutical Research
Published
2026-10-07
DOI
https://doi.org/10.1007/s11095-026-04204-2
Primary Topic
Protein purification and stability
Type
article
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article

Polar vs Non-polar Excipients in BSA Aggregation

Thomas Balle, Veysel Kayser, Samuel Tien, Annika Sollann Sørensen et al.
Pharmaceutical Research
Protein purification and stability
article

Polar vs Non-polar Excipients in BSA Aggregation

Thomas Balle, Veysel Kayser, Samuel Tien, Annika Sollann Sørensen, Simone Nørgaard Krabbe
article en

Abstract

Abstract Purpose In recent years, there has been a rapid expansion in the development of new protein therapeutics in the pharmaceutical industry. Problematically, proteins are conformationally and colloidally marginally stable, and thus it is necessary to formulate them using buffering and stabilizing agents. Methods In this study, we use experimental and computation techniques to evaluate the aggregation pathway, as well as the stabilizing properties of a range of excipients on a model protein; bovine serum albumin (BSA). Results Our results show that polar excipients (L-arginine and trimethylamine N-oxide) decrease BSA stability, whereas non-polar excipients (L-alanine and L-valine) enhances it. To elucidate molecular mechanisms behind these trends, we constructed a multi-step unfolding and aggregation model. Upon thermal stress, the protein system is driven to form a disrupted dimer/trimer species across a steep activation energy barrier. This acts as the primary kinetic bottleneck, as once these intermediate states form sufficiently, large aggregates in tetramers and pentamers form across a significantly lower energy barrier. High temperature molecular dynamics simulations reveal that the unfolding mode of the monomer is characterized by the detachment of its C-terminus domain, creating an extended, aggregation prone structure. Crucially, in the native structure, this flexible region contains the only prominent solvent exposed hydrophobic patch on an otherwise hydrophilic protein surface. Therefore, hydrophobic excipients are predicted to interface with this hotspot, stabilizing the folded structure and suppressing downstream aggregation formation. Conclusions Overall, this work demonstrates that understanding the specific protein aggregation mechanisms is key for the rational selection of stabilizers.

Pharmaceutical Research
Openalex Percentile: Top 22%
Protein purification and stability
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