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DNA-Tethered RNA Polymerase for Programmable In vitro Transcription and Molecular Computation
Published on: December 29, 2021
Polus: A context-aware enhancement framework for DNA storage via Transformer-based soft-decision decoding
Lulu Ding1,2, Kun Wang1,2, Hongmei Zhang3
1School of Artificial Intelligence, Shenzhen University, Shenzhen, China.
Bioinformatics (Oxford, England)
|July 28, 2026
Summary
Polus enhances DNA data storage reliability using soft-decision decoding, significantly boosting density and reducing error correction needs. This framework improves DNA storage efficiency without altering existing encoding methods.
Area of Science:
- Bioinformatics and Computational Biology
- Data Storage Technologies
- Molecular Engineering
Background:
- DNA data storage offers high density and longevity but faces challenges from biochemical noise during synthesis, storage, and sequencing.
- Traditional error correction in DNA storage uses excessive redundancy, compromising efficiency and density.
- Existing methods struggle to effectively mitigate complex error patterns inherent in DNA sequencing.
Purpose of the Study:
- To introduce Polus, a Transformer-based framework designed to enhance the reliability of DNA data storage.
- To improve digital reliability through soft-decision decoding (SDD) without modifying existing encoding schemes.
- To provide a reproducible framework for context-aware decoding and system design guidance in DNA storage.
Main Methods:
- Development of SeqFormer, a Transformer-based channel model that integrates sequence context with quality signals.
- Generation of calibrated per-base confidence scores to convert biochemical noise into informative 'soft' erasures.
- In silico benchmarking of the Polus framework with mainstream DNA storage codecs like DNA Fountain and Yin-Yang.
Main Results:
- Polus significantly improves mainstream DNA storage codecs, reducing sequencing coverage for DNA Fountain by 38.9% and increasing effective physical density by ~80%.
- The framework eliminates persistent indel-induced errors in the Yin-Yang codec and enables targeted resequencing with 99.9% less overhead.
- A comprehensive nine-metric evaluation suite demonstrated multi-dimensional improvements in reliability, density, and cost across DNA storage codecs.
Conclusions:
- Polus provides a novel soft-decision decoding approach that enhances DNA data storage reliability and efficiency.
- The framework effectively transforms biochemical noise into usable information, overcoming limitations of conventional error correction.
- Polus offers a reproducible system for context-aware decoding, guiding future DNA storage system design and optimization.
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