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Updated: May 18, 2026

Using Modified Synthetic Oligonucleotides to Assay Nucleic Acid-Metabolizing Enzymes
Published on: July 5, 2024
Discovery and engineering of polymerases and ligases for the synthesis of modified nucleic acids
Sumire Honda Malca1, Peter Stockinger2, Miquel Estévez-Gay2
1Competence Center for Biocatalysis, Institute of Chemistry and Biotechnology, Zurich University of Applied Sciences, Einsiedlerstrasse 31, 8820 Wädenswil, Switzerland.
Abstract:
Oligonucleotides have emerged as a rapidly expanding modality in therapeutics, diagnostics, and synthetic biology, increasing manufacturing demand. However, solid phase oligonucleotide synthesis, the dominant production technology, is hampered by cumulative yield losses as sequence length increases, poor scalability for stereochemically defined backbones, and high solvent and reagent consumption. In response, enzymatic routes that extend or assemble oligonucleotides in water, at ambient temperature, and with high chemo- and regioselectivity have progressed from explorative technologies to process-relevant platforms. While recent reviews have mapped this landscape from chemoenzymatic manufacturing perspectives, here we focus on recent approaches that harness engineered polymerases and ligases for the synthesis of oligonucleotides bearing non-natural building blocks. We examine how computational tools accelerate the discovery and engineering of nucleic acid modifying enzymes and highlight recent development examples. In addition, we provide a web application that simplifies discovery of scaffolds across biocatalyst families involved in oligonucleotide elongation and assembly (https://buller-lab.github.io/DNA-RNA_Polymerases_Ligases/).
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