Crystallographic analysis of engineered polymerases synthesizing phosphonomethylthreosyl nucleic acid

Author:

Hajjar Mohammad1ORCID,Chim Nicholas1ORCID,Liu Chao2,Herdewijn Piet2ORCID,Chaput John C1345ORCID

Affiliation:

1. Department of Pharmaceutical Sciences, University of California , Irvine , CA 92697-3958 , USA

2. Medicinal Chemistry, Rega Institute for Medical Research, KU Leuven , Herestraat 49, 3000 Leuven, Belgium

3. Department of Chemistry, University of California , Irvine , CA 92697-3958 , USA

4. Department of Molecular Biology and Biochemistry, University of California , Irvine , CA 92697-3958 , USA

5. Department of Chemical and Biomolecular Engineering, University of California , Irvine , CA 92697-3958 , USA

Abstract

Abstract Xeno-nucleic acids (XNAs) are synthetic genetic polymers with backbone structures composed of non-ribose or non-deoxyribose sugars. Phosphonomethylthreosyl nucleic acid (pTNA), a type of XNA that does not base pair with DNA or RNA, has been suggested as a possible genetic material for storing synthetic biology information in cells. A critical step in this process is the synthesis of XNA episomes using laboratory-evolved polymerases to copy DNA information into XNA. Here, we investigate the polymerase recognition of pTNA nucleotides using X-ray crystallography to capture the post-catalytic complex of engineered polymerases following the sequential addition of two pTNA nucleotides onto the 3′-end of a DNA primer. High-resolution crystal structures reveal that the polymerase mediates Watson–Crick base pairing between the extended pTNA adducts and the DNA template. Comparative analysis studies demonstrate that the sugar conformation and backbone position of pTNA are structurally more similar to threose nucleic acid than DNA even though pTNA and DNA share the same six-atom backbone repeat length. Collectively, these findings provide new insight into the structural determinants that guide the enzymatic synthesis of an orthogonal genetic polymer, and may lead to the discovery of new variants that function with enhanced activity.

Funder

National Science Foundation

Belgian National Fund for Scientific Research

Publisher

Oxford University Press (OUP)

Subject

Genetics

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