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Protein Engineering by Yeast Surface Display
Published on: November 29, 2024
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Mutational and biophysical robustness in a prestabilized monobody
Peter G Chandler1, Li Lynn Tan2, Benjamin T Porebski3
1Department of Biochemistry and Molecular Biology, Biomedicine Discovery Institute, Monash University, Clayton, Victoria, Australia.
The Journal of Biological Chemistry
|February 22, 2021
Summary
Researchers engineered a stable fibronectin type III (FN3) monobody (FN3Con) to bind the therapeutic target VEGFR2. This novel construct maintains high stability, showing potential for diagnostics and therapeutics.
Area of Science:
- Protein engineering
- Biotechnology
- Immunology
Background:
- Fibronectin type III (FN3) monobodies offer a non-antibody scaffold with simpler architecture and binding loops.
- Previous development of FN3Con resulted in a hyperstable monobody with therapeutic and diagnostic potential.
- Prestabilization of protein scaffolds can mitigate stability-function trade-offs during biological activity evolution.
Purpose of the Study:
- To assess if the FN3Con monobody scaffold can achieve antibody-like binding to therapeutic targets while maintaining extreme stability.
- To investigate the strategy of loop grafting onto a prestabilized scaffold for developing novel protein domains.
- To evaluate the stability and binding affinity of a new FN3Con-based construct targeting VEGFR2.
Main Methods:
- Grafting binding loops from Adnectin-anti-VEGFR2 (CT-322) onto the prestabilized FN3Con scaffold.
- Characterizing the binding affinity of the resulting FN3Con-anti-VEGFR2 construct to VEGFR2.
- Assessing the thermostability and long-term storage stability of the engineered monobody.
- Investigating the impact of buffer excipients on monobody stability through accelerated trials.
Main Results:
- The FN3Con-anti-VEGFR2 construct successfully bound to the therapeutic target VEGFR2 with high affinity.
- The engineered monobody maintained high thermostability and remarkable long-term stability, retaining activity after two years at 36 °C.
- Buffer excipient investigations doubled the monomeric monobody presence in accelerated stability trials.
- Loop grafting onto a prestabilized scaffold proved to be a viable strategy for developing protein domains with desirable biophysical characteristics.
Conclusions:
- The FN3Con scaffold is well-suited for developing stable, antibody-like binding domains.
- This approach enables the creation of monobodies with high affinity and exceptional stability for therapeutic and diagnostic applications.
- The developed FN3Con-anti-VEGFR2 construct demonstrates significant potential for shelf-stable diagnostics and therapeutics.
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