Back

Engineering chimeric DNA polymerases for DNA movable type storage

Liu, X.; Zhao, Q.; Yu, E.; Jia, L.; Shi, Y.; Liu, D.; Han, H.; Li, Q.

2025-12-19 synthetic biology
10.64898/2025.12.18.694503 bioRxiv
Show abstract

DNA-based information storage offers a promising alternative to conventional media due to its high density, long-term stability, and low energy requirements. However, its application remains hindered by synthesis costs, limited sequence length and poor scalability. DNA polymerase is a critical enzymatic tool in the DNA storage systems by enabling high-fidelity data writing and targeted sequence amplification. In this study, we engineered chimeric DNA polymerases by fusing the high-fidelity 9{degrees}N DNA polymerase with double-stranded DNA binding proteins derived from thermophilic archaea. These fusions significantly enhanced processivity, thermal stability, and salt tolerance by stabilizing enzyme-template interactions, mimicking sliding clamps while preserving catalytic efficiency. Leveraging these properties, we demonstrated precise file retrieval from a mixed oligonucleotide pool using orthogonal barcode primers. Compared with wild-type 9{degrees}N, the chimeric polymerases, particularly PLS, exhibited reduced substitution error rates and improved read accuracy. We then applied these enzymes to a DNA movable type storage system, where prefabricated DNA modules were assembled into encoding blocks. Using engineered polymerases, these blocks were recombined to enable flexible data rewriting without de novo DNA synthesis. Moreover, a multi-enzyme assembly strategy enabled the construction of kilobase-scale DNA sequences encoding a classical Chinese poem, achieving complete data recovery. All assembled fragments remained stable in E. coli over 100 generations, exhibiting the potential for in vivo storage. Collectively, our findings demonstrated the role of engineered DNA polymerases for DNA-based information storage. Moreover, this system reduced synthesis demands, supported scalable rewriting, and ensured long-term preservation, offering a practical route to sustainable, high-fidelity DNA data storage.

Matching journals

The top 4 journals account for 50% of the predicted probability mass.

1
Synthetic and Systems Biotechnology
11 papers in training set
Top 0.1%
18.9%
2
ACS Synthetic Biology
287 papers in training set
Top 0.3%
13.4%
3
Nucleic Acids Research
1281 papers in training set
Top 1%
13.2%
4
Advanced Science
286 papers in training set
Top 0.3%
9.9%
50% of probability mass above
5
Science China Life Sciences
29 papers in training set
Top 0.1%
6.9%
6
Nature Communications
5641 papers in training set
Top 32%
4.1%
7
International Journal of Biological Macromolecules
76 papers in training set
Top 0.4%
3.6%
8
ChemBioChem
55 papers in training set
Top 0.5%
2.2%
9
Angewandte Chemie International Edition
93 papers in training set
Top 0.8%
2.2%
10
Journal of Molecular Biology
232 papers in training set
Top 2%
1.8%
11
Computational and Structural Biotechnology Journal
242 papers in training set
Top 3%
1.8%
12
PLOS ONE
5266 papers in training set
Top 47%
1.8%
13
National Science Review
21 papers in training set
Top 0.1%
1.5%
14
Trends in Biotechnology
12 papers in training set
Top 0.1%
1.2%
15
Applied and Environmental Microbiology
339 papers in training set
Top 4%
1.1%
16
Plant Biotechnology Journal
64 papers in training set
Top 1%
1.0%
17
Scientific Reports
3612 papers in training set
Top 70%
1.0%
18
Briefings in Bioinformatics
354 papers in training set
Top 6%
0.9%
19
Genomics, Proteomics & Bioinformatics
172 papers in training set
Top 2%
0.9%
20
eLife
5828 papers in training set
Top 64%
0.9%
21
The CRISPR Journal
39 papers in training set
Top 0.4%
0.6%