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(125b) Directed Evolution of Quorum-Sensing Dependent Transcriptional Repressers for Programmed Intercellular Communication

机译:(125b)用于编程的细胞间通信的频读依赖性转录压缩机的定向演变

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One of the key challenges in the field of synthetic biology is to engineer not only single cells but also communities of cells that exhibit coordinated, population level behaviors. Synthetic biologists have employed components from acyl-homoserine lactone (AHL)-based quorum-sensing (QS) systems in their endeavors to build muticellular systems. To date, the regulators available in the toolbox of QS regulatory parts for engineering intercellular communication have been limited to transcriptional activators, most frequently the AHL-dependent activator LuxR. Transcriptional activators function by recruiting RNA polymerase (RNAp) to a promoter sequence and thus require specific interactions with RNAp. In contrast, transcriptional repressors bind to operator regions within a promoter and inhibit the initiation of transcription. To expand this toolbox of regulatory parts, we have engineered the AHL-dependent transcriptional repressor, EsaR, for use in synthetic microbial communities. Characterization of wild-type EsaR showed that it requires micromolar concentrations of AHL to achieve complete derepression, while the LuxR will activate gene expression in the presence of nanomolar concentrations of AHL. In order to generate QS repressors with sensitivities comparable to LuxR, we built libraries of esaR mutants and identified EsaR variants with increased AHL sensitivity using an ON/OFF screening system. We first screened for an absence of gene expression to identify EsaR variants that retained the ability to repress gene expression (OFF screening). We subsequently screened for reporter gene expression in the presence of nanomolar concentrations of AHL (ON screening). We have identified a number of EsaR variants that respond to a range of AHL concentrations, from 10 nM to 1 uM. These new regulatory parts will enable future work exploring the roles of different regulatory mechanisms and network architectures for intercellular communication in both natural and engineered multicellular systems.
机译:合成生物学领域的关键挑战之一是工程师不仅是单细胞,而且还为具有展示协调的人口水平行为的细胞的社区。合成生物学家已经使用来自酰基 - 甲晶内酯(AHL)的组分,基于仲裁频率传感(QS)系统,以构建蛋白细胞系统。迄今为止,QS调节部件的工具箱中可用的监管机构用于工程间间通信的型号已经限于转录激活剂,最常见的AHL依赖激活器Luxr。转录激活剂通过募集RNA聚合酶(RNAP)募集到启动子序列,因此需要与RNAP的特异性相互作用。相反,转录压缩机与启动子内的操作员区域结合并抑制转录的开始。为了扩展该监管部件的工具箱,我们设计了AHL依赖性转录压缩机,ESAR,用于合成微生物群落。野生型ESAR的表征表明,它需要Micromolar浓度AHL达到完全的DERELAGES,而LUXR将在纳米摩尔浓度的AHL存在下激活基因表达。为了产生具有与Luxr相当的敏感性的QS阻遏物,我们构建了ESAR突变体的文库,并使用开/关筛选系统识别出具有增加的AHL灵敏度的ESAR变体。我们首先筛选没有基因表达以鉴定保留抑制基因表达的能力的ESAR变体(关闭筛选)。随后在纳米摩尔浓度的AHL(筛选)存在下筛选报告基因表达。我们已经确定了许多响应AHL浓度范围的ESAR变体,从10nm到1μm。这些新的监管部门将使未来的工作能够探索不同监管机制和网络架构在天然和工程化多细胞系统中进行细胞间通信的作用。

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