Plant Research Laboratory, Michigan State University, East Lansing, Michigan48824-1312, United States.
Department of Microbiology & Molecular Genetics, Michigan State University, East Lansing, Michigan48824-1312, United States.
ACS Synth Biol. 2023 Jan 20;12(1):265-276. doi: 10.1021/acssynbio.2c00527. Epub 2022 Dec 27.
There has been substantial recent interest in the promise of sustainable, light-driven bioproduction using cyanobacteria, including developing efforts for microbial bioproduction using mixed autotroph/heterotroph communities, which could provide useful properties, such as division of metabolic labor. However, building stable mixed-species communities of sufficient productivity remains a challenge, partly due to the lack of strategies for synchronizing and coordinating biological activities across different species. To address this obstacle, we developed an inter-species communication system using quorum sensing (QS) modules derived from well-studied pathways in heterotrophic microbes. In the model cyanobacterium, PCC 7942 (), we designed, integrated, and characterized genetic circuits that detect acyl-homoserine lactones (AHLs), diffusible signals utilized in many QS pathways. We showed that these receiver modules sense exogenously supplied AHL molecules and activate gene expression in a dose-dependent manner. We characterized these AHL receiver circuits in parallel with W ( W) to dissect species-specific properties, finding broad agreement, albeit with increased basal expression in . Our engineered "sender" strains accumulated biologically synthesized AHLs within the supernatant and activated receiver strains similarly to exogenous AHL activation. Our results will bolster the design of sophisticated genetic circuits in cyanobacterial/heterotroph consortia and the engineering of QS-like behaviors across cyanobacterial populations.
最近,人们对利用蓝细菌实现可持续、光驱动的生物生产的前景产生了浓厚的兴趣,包括利用混合自养/异养群落进行微生物生物生产的开发努力,这可以提供有用的特性,如代谢劳动的分工。然而,构建具有足够生产力的稳定混合物种群落仍然是一个挑战,部分原因是缺乏用于跨不同物种同步和协调生物活动的策略。为了解决这个障碍,我们使用来自异养微生物中研究充分的途径的群体感应 (QS) 模块开发了一种种间通信系统。在模型蓝藻 PCC 7942 () 中,我们设计、整合和表征了遗传回路,这些回路可以检测酰基高丝氨酸内酯 (AHLs),这是许多 QS 途径中使用的可扩散信号。我们表明,这些受体模块以剂量依赖的方式感知外源供应的 AHL 分子并激活基因表达。我们与 W ( W) 平行表征这些 AHL 受体回路,以剖析种间特异性特性,发现尽管在 中表达基础增加,但存在广泛的一致性。我们设计的“发送器”菌株在细胞外液中积累生物合成的 AHL,并且以类似于外源 AHL 激活的方式激活受体菌株。我们的结果将增强在蓝细菌/异养菌联合体中设计复杂遗传回路的能力,并增强蓝细菌群体中类似 QS 行为的工程设计。