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Synthetic Genetic Circuits for Precision Payload Control in Engineered Bacteriophages: From Natural Chassis to Programmable Therapeutics

2026-07-24 · Center of Medicine

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One-line summary

Precision therapeutic alternatives to traditional antibiotics have become essential because to the global antimicrobial resistance (AMR) challenge.

Engineering notes

Key topics: autonomous driving, control. See the paper for implementation details and experimental results.

Chinese explanation / 中文解读

中文解读待补充:本站会优先为端到端自动驾驶、BEV感知、3D目标检测、轨迹预测、路径规划、LiDAR感知等高价值论文补充中文说明。

Original abstract

Precision therapeutic alternatives to traditional antibiotics have become essential because to the global antimicrobial resistance (AMR) challenge. Through genetic engineering and synthetic biology, bacteriophage viruses which specifically infect bacteria have become programmable antimicrobial platforms. The development of phage engineering from the use of natural regulatory systems to the creation of complex synthetic genomic circuits is methodically examined in this overview. We talk about genetic logic gates for multi-input sensing, inducible systems for spatiotemporal regulation of therapeutic payloads, and the growing significance of computational design tools in speeding up phage engineering. We also examine the regulatory environment and clinical translation issues, such as the historic SNIPR001 phase 1 trial that showed CRISPR-Cas-armed phages are safe in humans. The combination of phage therapy with synthetic biology promises a paradigm shift toward programmable antimicrobial therapies, despite the fact that there are still considerable technological and regulatory obstacles to overcome.

5.0Engineering value
7.0Research novelty
5.0Business relevance

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