Engineering oxidoreductases: maquette proteins designed from scratch

Author:

Lichtenstein Bruce R.1,Farid Tammer A.1,Kodali Goutham1,Solomon Lee A.1,Anderson J.L. Ross2,Sheehan Molly M.1,Ennist Nathan M.1,Fry Bryan A.1,Chobot Sarah E.3,Bialas Chris1,Mancini Joshua A.1,Armstrong Craig T.2,Zhao Zhenyu1,Esipova Tatiana V.1,Snell David4,Vinogradov Sergei A.1,Discher Bohdana M.1,Moser Christopher C.1,Dutton P. Leslie1

Affiliation:

1. Johnson Research Foundation, Department of Biochemistry and Biophysics, University of Pennsylvania, 422 Curie Boulevard, Philadelphia, PA 19104, U.S.A.

2. School of Biochemistry, University of Bristol, University Walk, Bristol BS8 1TD, U.K.

3. Department of Chemistry and Chemical Biology, Cornell University, Ithaca, NY 14853, U.S.A.

4. University of Chicago, 5747 S. Ellis Ave, Chicago, IL 60637, U.S.A.

Abstract

The study of natural enzymes is complicated by the fact that only the most recent evolutionary progression can be observed. In particular, natural oxidoreductases stand out as profoundly complex proteins in which the molecular roots of function, structure and biological integration are collectively intertwined and individually obscured. In the present paper, we describe our experimental approach that removes many of these often bewildering complexities to identify in simple terms the necessary and sufficient requirements for oxidoreductase function. Ours is a synthetic biology approach that focuses on from-scratch construction of protein maquettes designed principally to promote or suppress biologically relevant oxidations and reductions. The approach avoids mimicry and divorces the commonly made and almost certainly false ascription of atomistically detailed functionally unique roles to a particular protein primary sequence, to gain a new freedom to explore protein-based enzyme function. Maquette design and construction methods make use of iterative steps, retraceable when necessary, to successfully develop a protein family of sturdy and versatile single-chain three- and four-α-helical structural platforms readily expressible in bacteria. Internally, they prove malleable enough to incorporate in prescribed positions most natural redox cofactors and many more simplified synthetic analogues. External polarity, charge-patterning and chemical linkers direct maquettes to functional assembly in membranes, on nanostructured titania, and to organize on selected planar surfaces and materials. These protein maquettes engage in light harvesting and energy transfer, in photochemical charge separation and electron transfer, in stable dioxygen binding and in simple oxidative chemistry that is the basis of multi-electron oxidative and reductive catalysis.

Publisher

Portland Press Ltd.

Subject

Biochemistry

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