数字农科院2.0

Towards next-generation DNA encryption via an expanded genetic system

文献类型: 外文期刊

作者: Huang, Xiaoluo;Hou, Zhaohua;Qiang, Wei;Wang, Honglei;Wang, Xiangxiang;Chen, Xiaoxu;Hu, Xin;Dai, Junbiao;Li, Lingjun;Zhao, Guanghou

作者机构:

关键词: (0-3-5)multilevel DNA encryption;unnatural base pair;Codec algorithm;DNA data storage

期刊名称: NATIONAL SCIENCE REVIEW

ISSN: 2095-5138

年卷期: 2025 年 12 卷 4 期

页码:

收录情况: SCIE(2025版) ; ; EI(2025版) ; ; CSCD(2025-2026年度) ; ; 科技核心(2024版)

摘要: Information encryption based on DNA data archiving, referred to as DNA encryption, has been advocated for decades and has become highly appealing owing to its remarkable advantages, e.g. high storage capacity, complexity and programmability. Early DNA encryption schemes primarily leveraged the natural four-letter genetic alphabet for data storage, with message-storing DNA sequences easily decrypted by routine DNA sequencing, which is consequently vulnerable to attack and faces severe security challenges. Here, an unnatural base pair (UBP), dNaM-dTPT3, was introduced into the message and/or index DNA sequences, which can be stored either in vitro or in vivo; this approach achieved the bioorthogonal encryption of 'secret' messages, where message DNAs could be selectively, faithfully and readily retrieved or read exclusively in the presence of unnatural bases. Furthermore, a separative computational algorithm, named IM-Codec, was developed to encrypt the data into a 'key sequence' and an 'information sequence' through UBP insertion. Finally, a UBP-based multilevel DNA encryption approach was developed and validated for data encryption and decryption. The employment of the UBP expanded genetic system for data encryption should provide valuable solutions for archiving highly confidential data and thus usher in a new era of DNA encryption.

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