Exploiting sequence and stability information for directing nanobody stability engineering.

Patrick Kunz, Tilman Flock, Nicolas Soler, Moritz Zaiss, Cécile Vincke, Yann Sterckx, Damjana Kastelic, Serge Muyldermans, Jörg D Hoheisel

Journal: Biochimica et biophysica acta. General subjects 2017;1861(9):2196-2205

PMID: 28642127

Abstract

BACKGROUND

Variable domains of camelid heavy-chain antibodies, commonly named nanobodies, have high biotechnological potential. In view of their broad range of applications in research, diagnostics and therapy, engineering their stability is of particular interest. One important aspect is the improvement of thermostability, because it can have immediate effects on conformational stability, protease resistance and aggregation propensity of the protein.

METHODS

We analyzed the sequences and thermostabilities of 78 purified nanobody binders. From this data, potentially stabilizing amino acid variations were identified and studied experimentally.

RESULTS

Some mutations improved the stability of nanobodies by up to 6.1°C, with an average of 2.3°C across eight modified nanobodies. The stabilizing mechanism involves an improvement of both conformational stability and aggregation behavior, explaining the variable degree of stabilization in individual molecules. In some instances, variations predicted to be stabilizing actually led to thermal destabilization of the proteins. The reasons for this contradiction between prediction and experiment were investigated.

CONCLUSIONS

The results reveal a mutational strategy to improve the biophysical behavior of nanobody binders and indicate a species-specificity of nanobody architecture.

GENERAL SIGNIFICANCE

This study illustrates the potential and limitations of engineering nanobody thermostability by merging sequence information with stability data, an aspect that is becoming increasingly important with the recent development of high-throughput biophysical methods.

Copyright © 2017 The Authors. Published by Elsevier B.V. All rights reserved.

Address: Division of Functional Genome Analysis, German Cancer Research Center (DKFZ), Im Neuenheimer Feld 580, 69120 Heidelberg, Germany. Electronic address: [email protected].; Division of Structural Studies, MRC Laboratory of Molecular Biology, Francis Crick Avenue, Cambridge CB2 0QH, United Kingdom.; Crystallographic Methods, Molecular Biology Institute of Barcelona (CSIC), carrer Baldiri Reixac 4-8, 08028 Barcelona, Spain.; Department of High-field Magnetic Resonance, Max-Planck-Institute for Biological Cybernetics, Spemannstraße 41, 72076 Tübingen, Germany.; Laboratory of Cellular and Molecular Immunology, Vrije Universiteit Brussel, Pleinlaan 2, 1050 Brussels, Belgium.; Division of Functional Genome Analysis, German Cancer Research Center (DKFZ), Im Neuenheimer Feld 580, 69120 Heidelberg, Germany.
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