State Key Laboratory of Bioelectronics, School of Biological Science and Medical Engineering, Southeast University, Nanjing 210096, China.
School of Material Science and Engineering, Nanyang Technological University, 50 Nanyang Avenue, Singapore 639798, Singapore.
Sci Adv. 2023 May 10;9(19):eadg9933. doi: 10.1126/sciadv.adg9933.
Digital information, when converted into a DNA sequence, provides dense, stable, energy-efficient, and sustainable data storage. The most stable method for encapsulating DNA has been in an inorganic matrix of silica, iron oxide, or both, but are limited by low DNA uptake and complex recovery techniques. This study investigated a rationally designed thermally responsive functionally graded (TRFG) hydrogel as a simple and cost-effective method for storing DNA. The TRFG hydrogel shows high DNA uptake, long-term protection, and reusability due to nondestructive DNA extraction. The high loading capacity was achieved by directly absorbing DNA from the solution, which is then retained because of its interaction with a hyperbranched cationic polymer loaded into a negatively charged hydrogel matrix used as a support and because of its thermoresponsive nature, which allows DNA concentration within the hydrogel through multiple swelling/deswelling cycles. We were able to achieve a high DNA data density of 7.0 × 10 gigabytes per gram using a hydrogel-based system.
数字信息转换为 DNA 序列后,可提供高密度、稳定、节能且可持续的数据存储。将 DNA 封装在二氧化硅、氧化铁或两者的无机基质中是最稳定的方法,但这种方法受到 DNA 摄取量低和复杂回收技术的限制。本研究探索了一种经过合理设计的温敏功能梯度(TRFG)水凝胶,作为一种简单且具有成本效益的 DNA 存储方法。TRFG 水凝胶具有高的 DNA 摄取量、长期保护和可重复使用性,因为可以进行非破坏性的 DNA 提取。高负载能力是通过直接从溶液中吸收 DNA 来实现的,然后通过与负载在作为支撑物的带负电荷的水凝胶基质中的超支化阳离子聚合物的相互作用以及其温敏特性来保留 DNA,因为温敏特性允许 DNA 在水凝胶中浓缩,可通过多次溶胀/去溶胀循环实现。我们使用基于水凝胶的系统实现了每克 7.0×10 吉字节的高 DNA 数据密度。