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任意数字 DNA 计算:由 λ 外切核酸酶驱动的可编程分子感知器,用于点亮串联电路。

Arbitrary Digital DNA Computing: A Programmable Molecular Perceptron Driven by Lambda Exonuclease for Lighting up Concatenated Circuits.

机构信息

School of Computer Science and Technology, Dalian University of Technology, Dalian 116024, China.

Key Laboratory of Advanced Design and Intelligent Computing, Dalian University, Dalian 116622, China.

出版信息

ACS Appl Mater Interfaces. 2024 May 15;16(19):24372-24383. doi: 10.1021/acsami.4c03486. Epub 2024 Apr 30.

Abstract

DNA circuits, as a type of biochemical system, have the capability to synchronize the perception of molecular information with a chemical reaction response and directly process the molecular characteristic information in biological activities, making them a crucial area in molecular digital computing and smart bioanalytical applications. Instead of cascading logic gates, the traditional research approach achieves multiple logic operations which limits the scalability of DNA circuits and increases the development costs. Based on the interface reaction mechanism of Lambda exonuclease, the molecular perceptron proposed in this study, with the need for only adjusting weight and bias parameters to alter the corresponding logic expressions, enhances the versatility of the molecular circuits. We also establish a mathematical model and an improved heuristic algorithm for solving weights and bias parameters for arbitrary logic operations. The simulation and FRET experiment results of a series of logic operations demonstrate the universality of molecular perceptron. We hope the proposed molecular perceptron can introduce a new design paradigm for molecular circuits, fostering innovation and development in biomedical research related to biosensing, targeted therapy, and nanomachines.

摘要

DNA 电路作为一种生化系统,具有将分子信息的感知与化学反应响应同步,并直接处理生物活动中分子特征信息的能力,使其成为分子数字计算和智能生物分析应用中的关键领域。本研究提出的分子感知器基于 Lambda 外切酶的界面反应机制,无需级联逻辑门即可实现多种逻辑操作,这不仅限制了 DNA 电路的可扩展性,还增加了开发成本。通过调整权重和偏差参数来改变相应的逻辑表达式,增强了分子电路的多功能性。我们还建立了一个数学模型和一个改进的启发式算法,用于求解任意逻辑操作的权重和偏差参数。一系列逻辑操作的仿真和 FRET 实验结果证明了分子感知器的通用性。我们希望所提出的分子感知器可以为分子电路引入一种新的设计范式,推动与生物传感、靶向治疗和纳米机器相关的生物医学研究的创新和发展。

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