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利用神经网络纳米孔读取处理技术扩展基于 DNA 的数据存储系统的分子字母表。

Expanding the Molecular Alphabet of DNA-Based Data Storage Systems with Neural Network Nanopore Readout Processing.

机构信息

Center for Biophysics and Quantitative Biology, University of Illinois at Urbana─Champaign, Urbana, Illinois 61801, United States.

Beckman Institute for Advanced Science and Technology, University of Illinois at Urbana─Champaign, Urbana, Illinois 61801, United States.

出版信息

Nano Lett. 2022 Mar 9;22(5):1905-1914. doi: 10.1021/acs.nanolett.1c04203. Epub 2022 Feb 25.

Abstract

DNA is a promising next-generation data storage medium, but challenges remain with synthesis costs and recording latency. Here, we describe a prototype of a DNA data storage system that uses an extended molecular alphabet combining natural and chemically modified nucleotides. Our results show that MspA nanopores can discriminate different combinations and ordered sequences of natural and chemically modified nucleotides in custom-designed oligomers. We further demonstrate single-molecule sequencing of the extended alphabet using a neural network architecture that classifies raw current signals generated by Oxford Nanopore sequencers with an average accuracy exceeding 60% (39× larger than random guessing). Molecular dynamics simulations show that the majority of modified nucleotides lead to only minor perturbations of the DNA double helix. Overall, the extended molecular alphabet may potentially offer a nearly 2-fold increase in storage density and potentially the same order of reduction in the recording latency, thereby enabling new implementations of molecular recorders.

摘要

DNA 是一种很有前途的下一代数据存储介质,但在合成成本和记录延迟方面仍存在挑战。在这里,我们描述了一种使用扩展分子字母表结合天然和化学修饰核苷酸的 DNA 数据存储系统原型。我们的结果表明,MspA 纳米孔可以区分天然和化学修饰核苷酸的不同组合和有序序列在定制设计的低聚物中。我们进一步使用神经网络架构展示了扩展字母表的单分子测序,该架构对牛津纳米孔测序器生成的原始电流信号进行分类,平均准确率超过 60%(比随机猜测大 39 倍)。分子动力学模拟表明,大多数修饰核苷酸仅导致 DNA 双螺旋的微小扰动。总的来说,扩展的分子字母表可能会提供近两倍的存储密度的增加,并可能会降低相同数量级的记录延迟,从而为分子记录器的新实现提供了可能。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/5634/8915253/ca6af4005562/nl1c04203_0001.jpg

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