尿素酶
光遗传学
细胞外
背景(考古学)
细菌
化学
合成生物学
水解
代谢工程
生物化学
新陈代谢
降级(电信)
微生物代谢
尿素
酶
重组DNA
细胞内
生物物理学
蛋白质工程
纳米技术
细胞生物学
生化工程
组织工程
反馈控制
组合化学
作者
Jenevieve Kuang,Olivia J. Armendarez,Wei‐Ting Chang,Matthew M. Hausladen,Shanna Bonanno,Daniel J. Wilson,Neel S Joshi,Leila F. Deravi
标识
DOI:10.1002/advs.202524319
摘要
Cells in many naturally occurring organisms routinely cooperate to control their extracellular pH in a dynamic and reversible manner, but this capability has been underexplored in synthetic biology. Here, we sought to engineer a microbial system that switches between two states -high and low extracellular pH- with minimal human intervention. We accomplished this by combining: (1) a genetic circuit that produces recombinant urease under the control of a light-inducible promoter; (2) a degradation tag on urease to accelerate the high-to-low pH transition; and (3) optimization of several environmental factors, including media composition, replenishment rate, and light exposure patterns. The system raises the pH when urease is produced and hydrolyzes urea in the media to produce ammonia; it lowers the pH as a byproduct of the cell's native metabolism when urease production ceases. We demonstrate that the optimized system cycles continuously for up to 14 days with minimal performance loss. Overall, our system demonstrates synthetic pH control in an engineered living system and highlights challenges and potential solutions for using such systems outside of the context of typical laboratory manipulation.
科研通智能强力驱动
Strongly Powered by AbleSci AI