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Programming Interchangeable and Reversible Heterooligomeric Protein Self-assembly Using a Bifunctional Ligand

Overview
Journal Chem Sci
Specialty Chemistry
Date 2024 Feb 26
PMID 38404387
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Abstract

Protein design for self-assembly allows us to explore the emergence of protein-protein interfaces through various chemical interactions. Heterooligomers, unlike homooligomers, inherently offer a comprehensive range of structural and functional variations. Besides, the macromolecular repertoire and their applications would significantly expand if protein components could be easily interchangeable. This study demonstrates that a rationally designed bifunctional linker containing an enzyme inhibitor and maleimide can guide the formation of diverse protein heterooligomers in an easily applicable and exchangeable manner without extensive sequence optimizations. As proof of concept, we selected four structurally and functionally unrelated proteins, carbonic anhydrase, aldolase, acetyltransferase, and encapsulin, as building block proteins. The combinations of two proteins with the bifunctional linker yielded four two-component heterooligomers with discrete sizes, shapes, and enzyme activities. Besides, the overall size and formation kinetics of the heterooligomers alter upon adding metal chelators, acidic buffer components, and reducing agents, showing the reversibility and tunability in the protein self-assembly. Given that the functional groups of both the linker and protein components are readily interchangeable, our work broadens the scope of protein-assembled architectures and their potential applications as functional biomaterials.

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References
1.
Supuran C . Carbonic anhydrases: novel therapeutic applications for inhibitors and activators. Nat Rev Drug Discov. 2008; 7(2):168-81. DOI: 10.1038/nrd2467. View

2.
Zhao J, Kajetanowicz A, Ward T . Carbonic anhydrase II as host protein for the creation of a biocompatible artificial metathesase. Org Biomol Chem. 2015; 13(20):5652-5. DOI: 10.1039/c5ob00428d. View

3.
Theodossis A, Walden H, Westwick E, Connaris H, Lamble H, Hough D . The structural basis for substrate promiscuity in 2-keto-3-deoxygluconate aldolase from the Entner-Doudoroff pathway in Sulfolobus solfataricus. J Biol Chem. 2004; 279(42):43886-92. DOI: 10.1074/jbc.M407702200. View

4.
Krebs J, Ippolito J, Christianson D, Fierke C . Structural and functional importance of a conserved hydrogen bond network in human carbonic anhydrase II. J Biol Chem. 1993; 268(36):27458-66. View

5.
Pricer R, Gestwicki J, Mapp A . From Fuzzy to Function: The New Frontier of Protein-Protein Interactions. Acc Chem Res. 2017; 50(3):584-589. PMC: 5786153. DOI: 10.1021/acs.accounts.6b00565. View