Recombinase-based genetic circuit optimization

Chun-Ning Lai, J. H. Jiang, F. Fages
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引用次数: 2

Abstract

The rapid advancements of synthetic biology show promising potential in biomedical and other applications. Recently, recombinases were proposed as a tool to engineer genetic logic circuits with long-term memory in living and even mammalian cells. The technology is under active development, and the complexity of engineered genetic circuits grows continuously. However, how to minimize a genetic circuit composed of recombinase-based logic gates remain largely open. In this paper, we formulate the problem as a cubic-time assignment problem and solved by a 0/1-ILP solver to minimize DNA sequence length of genetic circuits. Experimental results show effective reduction of our optimization method, which may be crucial to enable practical realization of complex genetic circuits.
基于重组的遗传电路优化
合成生物学的迅速发展在生物医学和其他应用方面显示出巨大的潜力。最近,重组酶被提出作为一种工具,在活的甚至哺乳动物细胞中设计具有长期记忆的遗传逻辑电路。该技术正在积极发展,工程基因电路的复杂性也在不断增长。然而,如何最小化由重组逻辑门组成的遗传电路仍然是一个很大的问题。本文将遗传电路的DNA序列长度最小化问题表述为一个三次时间分配问题,用0/1-ILP求解器求解。实验结果表明,该优化方法具有较好的简化效果,对复杂遗传电路的实际实现具有重要意义。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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