NERNST: a genetically-encoded ratiometric non-destructive sensing tool to estimate NADP(H) redox status in bacterial, plant and animal systems

Author:

Molinari Pamela E.ORCID,Krapp Adriana R.ORCID,Weiner Andrea,Beyer Hannes M.,Kondadi Arun KumarORCID,Blomeier TimORCID,López MelinaORCID,Bustos-Sanmamed PilarORCID,Tevere EvelynORCID,Weber WilfriedORCID,Reichert Andreas S.ORCID,Calcaterra Nora B.,Beller Mathias,Carrillo NestorORCID,Zurbriggen Matias D.ORCID

Abstract

AbstractNADP(H) is a central metabolic hub providing reducing equivalents to multiple biosynthetic, regulatory and antioxidative pathways in all living organisms. While biosensors are available to determine NADP+ or NADPH levels in vivo, no probe exists to estimate the NADP(H) redox status, a determinant of the cell energy availability. We describe herein the design and characterization of a genetically-encoded ratiometric biosensor, termed NERNST, able to interact with NADP(H) and estimate ENADP(H). NERNST consists of a redox-sensitive green fluorescent protein (roGFP2) fused to an NADPH-thioredoxin reductase C module which selectively monitors NADP(H) redox states via oxido-reduction of the roGFP2 moiety. NERNST is functional in bacterial, plant and animal cells, and organelles such as chloroplasts and mitochondria. Using NERNST, we monitor NADP(H) dynamics during bacterial growth, environmental stresses in plants, metabolic challenges to mammalian cells, and wounding in zebrafish. NERNST estimates the NADP(H) redox poise in living organisms, with various potential applications in biochemical, biotechnological and biomedical research.

Funder

Deutsche Forschungsgemeinschaft

Human Frontier Science Program

Deutscher Akademischer Austauschdienst

Publisher

Springer Science and Business Media LLC

Subject

General Physics and Astronomy,General Biochemistry, Genetics and Molecular Biology,General Chemistry,Multidisciplinary

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