生物
组合逻辑
加法器
模块化设计
减法器
构造(python库)
合成生物学
布尔电路
计算机科学
逻辑门
理论计算机科学
数字电子学
计算机体系结构
计算生物学
电子线路
计算机工程
算法
工程类
程序设计语言
电气工程
延迟(音频)
电信
作者
Jiawei Shao,Xinyuan Qiu,Lihang Zhang,Shichao Li,Shuai Xue,Yaqing Si,Yilin Li,Jian Jiang,Yuhang Wu,Qiqi Xiong,Yukai Wang,Qidi Chen,Ting Gao,Lingyun Zhu,Hui Wang,Mingqi Xie
出处
期刊:Cell
[Elsevier]
日期:2024-07-01
标识
DOI:10.1016/j.cell.2024.07.001
摘要
So far, biocomputation strictly follows traditional design principles of digital electronics, which could reach their limits when assembling gene circuits of higher complexity. Here, by creating genetic variants of tristate buffers instead of using conventional logic gates as basic signal processing units, we introduce a tristate-based logic synthesis (TriLoS) framework for resource-efficient design of multi-layered gene networks capable of performing complex Boolean calculus within single-cell populations. This sets the stage for simple, modular, and low-interference mapping of various arithmetic logics of interest and an effectively enlarged engineering space within single cells. We not only construct computational gene networks running full adder and full subtractor operations at a cellular level but also describe a treatment paradigm building on programmable cell-based therapeutics, allowing for adjustable and disease-specific drug secretion logics in vivo. This work could foster the evolution of modern biocomputers to progress toward unexplored applications in precision medicine.
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