Small-residue packing motifs modulate the structure and function of a minimal de novo membrane protein

Author:

Curnow Paul,Hardy Benjamin J.,Dufour Virginie,Arthur Christopher J.,Stenner Richard,Hodgson Lorna R.,Verkade Paul,Williams Christopher,Shoemark Deborah K.,Sessions Richard B.,Crump Matthew P.,Jones Michael R.,Anderson J. L. Ross

Abstract

AbstractAlpha-helical integral membrane proteins contain conserved sequence motifs that are known to be important in helix packing. These motifs are a promising starting point for the construction of artificial proteins, but their potential has not yet been fully explored. Here, we study the impact of introducing a common natural helix packing motif to the transmembrane domain of a genetically-encoded and structurally dynamic de novo membrane protein. The resulting construct is an artificial four-helix bundle with lipophilic regions that are defined only by the amino acids L, G, S, A and W. This minimal proto-protein could be recombinantly expressed by diverse prokaryotic and eukaryotic hosts and was found to co-sediment with cellular membranes. The protein could be extracted and purified in surfactant micelles and was monodisperse and stable in vitro, with sufficient structural definition to support the rapid binding of a heme cofactor. The reduction in conformational diversity imposed by this design also enhances the nascent peroxidase activity of the protein-heme complex. Unexpectedly, strains of Escherichia coli expressing this artificial protein specifically accumulated zinc protoporphyrin IX, a rare cofactor that is not used by natural metalloenzymes. Our results demonstrate that simple sequence motifs can rigidify elementary membrane proteins, and that orthogonal artificial membrane proteins can influence the cofactor repertoire of a living cell. These findings have implications for rational protein design and synthetic biology.

Funder

Biotechnology and Biological Sciences Research Council

Engineering and Physical Sciences Research Council

Publisher

Springer Science and Business Media LLC

Subject

Multidisciplinary

Cited by 7 articles. 订阅此论文施引文献 订阅此论文施引文献,注册后可以免费订阅5篇论文的施引文献,订阅后可以查看论文全部施引文献

1. Computational design of de novo bioenergetic membrane proteins;Biochemical Society Transactions;2024-07-03

2. Cellular production of a de novo membrane cytochrome;Proceedings of the National Academy of Sciences;2023-04-10

3. Expression and In Vivo Loading of De Novo Proteins with Tetrapyrrole Cofactors;Methods in Molecular Biology;2021-11-24

4. A Brief History of De Novo Protein Design: Minimal, Rational, and Computational;Journal of Molecular Biology;2021-10

5. Principles and Methods in Computational Membrane Protein Design;Journal of Molecular Biology;2021-10

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