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February 26, 2026ACS Synthetic Biology0 citations

Harnessing the Power of SMART Single-Molecule Display for Enzyme Evolution: A Focus on Oxidase

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KMKalhari MunaweeraNONana OdakeHHHannah Patricia Halim

Key Points

  • The aim is to establish a high-throughput selection platform for rapidly evolving tailor-made oxidase enzymes using SMART.
  • Developed a high-throughput SMART platform integrating mRNA display and next-generation sequencing.
  • Utilized ascorbate peroxidase 2 to detect hydrogen peroxide production by oxidases in a selection module.
  • Conducted site-saturation mutagenesis at the Y232 residue of SpDAAO to enrich active enzyme variants.
  • Single round of SMART selection enriched the activity of the enzyme variant.
  • Demonstrated that SMART can quickly select desired enzyme variants in hours.
  • Showed potential for customization of the SMART platform for different enzymatic reactions.

Abstract

For a rapid and cost-effective evolution of tailor-made enzymes, we established a high-throughput in vitro selection platform named SMART (Single-Molecule Assay on Ribonucleic acid by Translated product), integrating mRNA display, next-generation sequencing, and bioinformatics. SMART represents a versatile system where a module termed an auxiliary unit allows enzyme-specific selection under various experimental conditions. Here, we report on the establishment of SMART for oxidases using a model enzyme, Schizosaccharomyces pombe d-amino acid oxidase (SpDAAO), and ascorbate peroxidase 2 as the auxiliary enzyme to detect hydrogen peroxide produced by the oxidase, and mediate biotinylation of active single-molecule display complexes. As a proof-of-concept, a library including site-saturation mutagenesis at the catalytic residue Y232 of SpDAAO was subjected to a single SMART selection round, yielding enrichment of the active enzyme variant. The results demonstrate the utility of SMART as a fast, robust, and efficient platform with the potential of customization for other enzyme chemistries through appropriate modifications of the auxiliary unit. Using SMART, desired enzyme variants can be selected in just a few hours by a single person without the need for costly equipment or any bias or limitations.

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Cite This Study

Munaweera et al. (2026) studied this question.

synapsesocial.com/papers/699fe35995ddcd3a253e72a3https://doi.org/10.1021/acssynbio.5c00968
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