Biochemical Analysis Leads to Improved Orthogonal Bioluminescent Tools

Author:

Williams Sierra J.1,Gewing‐Mullins Jordan A.2,Lieberman Whitney K.2,Kolbaba‐Kartchner Bethany34,Iqbal Reema2,Burgess Hana M.2,Colee Clair M.2,Ornelas Marya Y.2,Reid‐McLaughlin Edison S.2,Mills Jeremy H.34,Prescher Jennifer A.156,Leconte Aaron M.2ORCID

Affiliation:

1. Department of Chemistry University of California, Irvine 1120 Natural Science II Irvine CA 92697 USA

2. W.M. Keck Science Department of Claremont McKenna, Pitzer, and Scripps Colleges The Claremont Colleges 925 N. Mills Ave. Claremont CA 91711 USA

3. School of Molecular Sciences Arizona State University Physical Sciences Center PSd-D102 Tempe AZ 85287 USA

4. The Biodesign Center for Molecular Design and Biomimetics Arizona State University 1001 S McAllister Ave Tempe AZ 85281 USA

5. Department of Molecular Biology and Biochemistry University of California, Irvine 3205 McGaugh Hall Irvine CA 92697 USA

6. Department of Pharmaceutical Sciences University of California, Irvine 101 Theory, Suite 100 Irvine CA 92697 USA

Abstract

AbstractEngineered luciferase‐luciferin pairs have expanded the number of cellular targets that can be visualized in tandem. While light production relies on selective processing of synthetic luciferins by mutant luciferases, little is known about the origin of selectivity. The development of new and improved pairs requires a better understanding of the structure−function relationship of bioluminescent probes. In this work, we report a biochemical approach to assessing and optimizing two popular bioluminescent pairs: Cashew/d‐luc and Pecan/4′‐BrLuc. Single mutants derived from Cashew and Pecan revealed key residues for selectivity and thermal stability. Stability was further improved through a rational addition of beneficial residues. In addition to providing increased stability, the known stabilizing mutations surprisingly also improved selectivity. The resultant improved pair of luciferases are >100‐fold selective for their respective substrates and highly thermally stable. Collectively, this work highlights the importance of mechanistic insight for improving bioluminescent pairs and provides significantly improved Cashew and Pecan enzymes which should be immediately suitable for multicomponent imaging applications.

Funder

National Institutes of Health

National Science Foundation

Publisher

Wiley

Subject

Organic Chemistry,Molecular Biology,Molecular Medicine,Biochemistry

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