Department of Life Sciences, Pohang University of Science and Technology, 77 Cheongam-ro, Pohang 37673, Gyeongbuk, Korea.
Int J Mol Sci. 2022 Apr 12;23(8):4265. doi: 10.3390/ijms23084265.
The development of computational logic that carries programmable and predictable features is one of the key requirements for next-generation synthetic biological devices. Despite considerable progress, the construction of synthetic biological arithmetic logic units presents numerous challenges. In this paper, utilizing the unique advantages of RNA molecules in building complex logic circuits in the cellular environment, we demonstrate the RNA-only bitwise logical operation of XOR gates and basic arithmetic operations, including a half adder, a half subtractor, and a Feynman gate, in . Specifically, de-novo-designed riboregulators, known as toehold switches, were concatenated to enhance the functionality of an OR gate, and a previously utilized antisense RNA strategy was further optimized to construct orthogonal NIMPLY gates. These optimized synthetic logic gates were able to be seamlessly integrated to achieve final arithmetic operations on small molecule inputs in cells. Toehold-switch-based ribocomputing devices may provide a fundamental basis for synthetic RNA-based arithmetic logic units or higher-order systems in cells.
开发具有可编程和可预测功能的计算逻辑是下一代合成生物器件的关键要求之一。尽管已经取得了相当大的进展,但合成生物算术逻辑单元的构建仍然存在许多挑战。在本文中,我们利用 RNA 分子在细胞环境中构建复杂逻辑电路的独特优势,展示了仅 RNA 的异或门和基本算术运算,包括半加器、半减器和费曼门,在 中的实现。具体来说,我们设计了串联的去核苷酸调节子,即门控开关,以增强或门的功能,并进一步优化了以前使用的反义 RNA 策略来构建正交的 NIMPLY 门。这些优化后的合成逻辑门可以无缝集成,以在细胞中对小分子输入进行最终的算术运算。基于门控开关的核糖计算机器件可能为细胞中基于合成 RNA 的算术逻辑单元或更高阶系统提供基础。