Reprogramming the Rossmann fold signature motif creates orthogonal redox biocatalysts

Abstract Biological reducing power is carried by nicotinamide adenine dinucleotide (phosphate) (NAD(P)/H), which supports cellular functions and cannot be specifically directed to engineered metabolic pathways. Nicotinamide mononucleotide (NMN(H)) has emerged as an orthogonal redox cofactor to address this. Herein, to create NMN(H)-specific enzymes that no longer interact with cellular NAD(P)/H pools, we perturb the ancient, conserved GxGxxG motif in Rossmann fold enzymes that enables persistent NAD(P)/H recognition. We build variants NRC-01 and NRC-02 on phosphite dehydrogenase (PTDH), which eliminate electron leaking to NAD(P)H-dependent side reactions while driving NMNH-dependent biotransformation with ~240-fold higher productivity than existing catalysts. Testing the design principle on 12 other vastly diverse enzymes yields additional NMN(H)-orthogonal enzymes catalyzing valuable biomanufacturing reactions, and reveals a potential rule predicting the translatability of this method. Rosetta modeling, structural alignment, and experimental results reveal that Rossmann fold reprogramming, paired with engineered structural reinforcement, may offer a general route to orthogonal redox biocatalysts.

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Publication Details

Journal
Nature Communications
Published
2026-09-12
DOI
https://doi.org/10.1038/s41467-026-77633-7
Primary Topic
Sirtuins and Resveratrol in Medicine
Type
article
Field-Weighted Citation Impact
0.00

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article

Reprogramming the Rossmann fold signature motif creates orthogonal redox biocatalysts

Emma Luu, Yulai Zhang, W. B. Black, Youtian Cui et al.
Nature Communications
Sirtuins and Resveratrol in Medicine
article

Reprogramming the Rossmann fold signature motif creates orthogonal redox biocatalysts

Emma Luu, Yulai Zhang, W. B. Black, Youtian Cui, Hans Jefferson C. Ng, Suphanida Worakaensai, Sean Perea, Han Li, Yu P, Minh-Anh L. Dinh, Shiding Zhang, Justin B. Siegel, Jin Young Kim, Edward King, Emma Monge
article en

Abstract

Abstract Biological reducing power is carried by nicotinamide adenine dinucleotide (phosphate) (NAD(P)/H), which supports cellular functions and cannot be specifically directed to engineered metabolic pathways. Nicotinamide mononucleotide (NMN(H)) has emerged as an orthogonal redox cofactor to address this. Herein, to create NMN(H)-specific enzymes that no longer interact with cellular NAD(P)/H pools, we perturb the ancient, conserved GxGxxG motif in Rossmann fold enzymes that enables persistent NAD(P)/H recognition. We build variants NRC-01 and NRC-02 on phosphite dehydrogenase (PTDH), which eliminate electron leaking to NAD(P)H-dependent side reactions while driving NMNH-dependent biotransformation with ~240-fold higher productivity than existing catalysts. Testing the design principle on 12 other vastly diverse enzymes yields additional NMN(H)-orthogonal enzymes catalyzing valuable biomanufacturing reactions, and reveals a potential rule predicting the translatability of this method. Rosetta modeling, structural alignment, and experimental results reveal that Rossmann fold reprogramming, paired with engineered structural reinforcement, may offer a general route to orthogonal redox biocatalysts.

Nature Communications
University of California, Irvine (US), University of California, Davis (US)
National Science Foundation, Alfred P. Sloan Foundation, National Institutes of Health, National Institute of General Medical Sciences, National Institute of Environmental Health Sciences
Openalex Percentile: Top 14%
Sirtuins and Resveratrol in Medicine
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