Keywords
albumin-binding domain, half-life extension, protein fusion, linker design, AlphaFold, structure prediction, therapeutic protein engineering, FcRn recycling
Abstract
Therapeutic proteins face a critical pharmacokinetic challenge: rapid clearance from circulation limits their clinical efficacy. Albumin-binding domains (ABDs) offer an elegant solution by enabling therapeutic proteins to “hitchhike” on serum albumin’s favorable 19-day half-life through FcRn-mediated recycling. Clinical validation through approved therapeutics like ozoralizumab demonstrates the success of this approach, with preclinical studies showing fusion to an ABD extended half-life to 18 days. This review provides an analysis of ABD-fusion protein design, integrating structural biology, computational prediction, and rational engineering principles. We catalog the major classes of albumin-binding modalities, including bacterial three-helix bundle domains, engineered peptides, antibody-derived binders, and alternative scaffolds, comparing their binding properties, size contributions, cross-species reactivity, and production cost. Critical examination of linker architectures reveals that flexible glycine-serine linkers (particularly the widely successful (GGGGS)3 motif) provide optimal balance between domain independence and molecular economy, though linker choice profoundly influences not only spatial separation but also binding affinity, folding, stability, and pharmacokinetics. We evaluate the utility and limitations of the structure prediction tools for ABD-fusion design. We establish practical guidelines for integrating computational screening with experimental validation. This review provides protein engineers and synthetic biologists with a comprehensive framework for rational design of albumin-binding therapeutics, emphasizing the synergistic integration of structural insight, computational prediction, and systematic experimental validation to accelerate development of next-generation long-acting biotherapeutics.
Original Publication Citation
Argyle, M. J., Chipman, D. M., Woolley, A. C., Bundy, B. C., & Della Corte, D. (2026). Albumin-Binding Domains in Therapeutic Protein Engineering: A Structural and Computational Perspective on Rational Design. SynBio, 4(1), 5. https://doi.org/10.3390/synbio4010005
BYU ScholarsArchive Citation
Argyle, Matthew; Chipman, Dallin M.; Woolley, Anna Claire; Bundy, Bradley C.; and Della Corte, Dennis, "Albumin-Binding Domains in Therapeutic Protein Engineering: A Structural and Computational Perspective on Rational Design" (2026). Faculty Publications. 9533.
https://scholarsarchive.byu.edu/facpub/9533
Document Type
Peer-Reviewed Article
Publication Date
2026-02-12
Publisher
MDPI
Language
English
College
Computational, Mathematical and Physical Sciences
Department
Physics and Astronomy
Copyright Use Information
https://lib.byu.edu/about/copyright/
Included in
Amino Acids, Peptides, and Proteins Commons, Other Biochemistry, Biophysics, and Structural Biology Commons