The Mutagenic Plasticity of the Cholera Toxin B-Subunit Surface Residues: Stability and Affinity

被引:1
作者
Au, Cheuk W. [1 ]
Manfield, Iain [1 ,2 ]
Webb, Michael E. [2 ,3 ]
Paci, Emanuele [4 ]
Turnbull, W. Bruce [2 ,3 ]
Ross, James F. [1 ,2 ]
机构
[1] Univ Leeds, Sch Mol & Cellular Biol, Leeds LS2 9JT, England
[2] Univ Leeds, Astbury Ctr Struct Mol Biol, Leeds LS2 9JT, England
[3] Univ Leeds, Sch Chem, Leeds LS2 9JT, England
[4] Dipartimento Fis & Astron Augusto Righi, Viale Berti Pichat 6-2, I-40127 Bologna, Italy
基金
英国工程与自然科学研究理事会;
关键词
cholera toxin B-subunit; CTB; GM1; ganglioside; melting temperature; dissociation constant; Rosetta; mutational-space map; differential scanning fluorimetry; isothermal titration calorimetry; HEAT-LABILE ENTEROTOXIN; ESCHERICHIA-COLI; RECEPTOR-BINDING; INTRACELLULAR TRAFFICKING; MUTATIONAL ANALYSIS; TARGETED DELIVERY; STRUCTURAL BASIS; BLOOD-GROUP; GANGLIOSIDE; PROTEIN;
D O I
10.3390/toxins16030133
中图分类号
TS2 [食品工业];
学科分类号
0832 ;
摘要
Mastering selective molecule trafficking across human cell membranes poses a formidable challenge in healthcare biotechnology while offering the prospect of breakthroughs in drug delivery, gene therapy, and diagnostic imaging. The cholera toxin B-subunit (CTB) has the potential to be a useful cargo transporter for these applications. CTB is a robust protein that is amenable to reengineering for diverse applications; however, protein redesign has mostly focused on modifications of the N- and C-termini of the protein. Exploiting the full power of rational redesign requires a detailed understanding of the contributions of the surface residues to protein stability and binding activity. Here, we employed Rosetta-based computational saturation scans on 58 surface residues of CTB, including the GM1 binding site, to analyze both ligand-bound and ligand-free structures to decipher mutational effects on protein stability and GM1 affinity. Complimentary experimental results from differential scanning fluorimetry and isothermal titration calorimetry provided melting temperatures and GM1 binding affinities for 40 alanine mutants among these positions. The results showed that CTB can accommodate diverse mutations while maintaining its stability and ligand binding affinity. These mutations could potentially allow modification of the oligosaccharide binding specificity to change its cellular targeting, alter the B-subunit intracellular routing, or impact its shelf-life and in vivo half-life through changes to protein stability. We anticipate that the mutational space maps presented here will serve as a cornerstone for future CTB redesigns, paving the way for the development of innovative biotechnological tools.
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页数:16
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