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新兴的 DNA 数据存储方法:挑战与展望。

Emerging Approaches to DNA Data Storage: Challenges and Prospects.

机构信息

Istituto Italiano di Tecnologia, via Morego 30, I-16163 Genova, Italy.

Dipartimento di Chimica e Chimica Industriale, Università di Genova, via Dodecaneso 31, 16146 Genova, Italy.

出版信息

ACS Nano. 2022 Nov 22;16(11):17552-17571. doi: 10.1021/acsnano.2c06748. Epub 2022 Oct 18.

Abstract

With the total amount of worldwide data skyrocketing, the global data storage demand is predicted to grow to 1.75 × 10 GB by 2025. Traditional storage methods have difficulties keeping pace given that current storage media have a maximum density of 10 GB/mm. As such, data production will far exceed the capacity of currently available storage methods. The costs of maintaining and transferring data, as well as the limited lifespans and significant data losses associated with current technologies also demand advanced solutions for information storage. Nature offers a powerful alternative through the storage of information that defines living organisms in unique orders of four bases (A, T, C, G) located in molecules called deoxyribonucleic acid (DNA). DNA molecules as information carriers have many advantages over traditional storage media. Their high storage density, potentially low maintenance cost, ease of synthesis, and chemical modification make them an ideal alternative for information storage. To this end, rapid progress has been made over the past decade by exploiting user-defined DNA materials to encode information. In this review, we discuss the most recent advances of DNA-based data storage with a major focus on the challenges that remain in this promising field, including the current intrinsic low speed in data writing and reading and the high cost per byte stored. Alternatively, data storage relying on DNA nanostructures (as opposed to DNA sequence) as well as on other combinations of nanomaterials and biomolecules are proposed with promising technological and economic advantages. In summarizing the advances that have been made and underlining the challenges that remain, we provide a roadmap for the ongoing research in this rapidly growing field, which will enable the development of technological solutions to the global demand for superior storage methodologies.

摘要

随着全球数据总量的飙升,预计到 2025 年,全球数据存储需求将增长到 1.75×10GB。鉴于当前存储介质的最大密度为 10GB/mm,传统的存储方法很难跟上这一需求。因此,数据产量将远远超过当前可用存储方法的容量。维护和传输数据的成本,以及当前技术的有限寿命和大量数据丢失,也需要先进的信息存储解决方案。大自然提供了一种强大的替代方案,通过存储以独特的四个碱基(A、T、C、G)顺序定义生物体的信息,这些碱基位于称为脱氧核糖核酸(DNA)的分子中。作为信息载体的 DNA 分子在许多方面优于传统存储介质。它们具有高存储密度、潜在的低成本维护、易于合成和化学修饰等优点,使其成为信息存储的理想替代品。为此,在过去十年中,利用用户定义的 DNA 材料对信息进行编码取得了快速进展。在这篇综述中,我们讨论了基于 DNA 的数据存储的最新进展,重点介绍了该领域仍然存在的挑战,包括当前数据写入和读取的固有低速度以及每字节存储的高成本。另一方面,还提出了基于 DNA 纳米结构(而不是 DNA 序列)以及其他纳米材料和生物分子组合的数据存储,具有有前景的技术和经济优势。在总结已经取得的进展和强调仍然存在的挑战的同时,我们为这个快速发展的领域提供了一个持续研究的路线图,这将为满足全球对卓越存储方法的需求开发技术解决方案奠定基础。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/20bf/9706676/3dffaefca9da/nn2c06748_0001.jpg

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