基于显微镜的高通量遗传因子筛选和定量。

IF 4.5 Q1 MICROBIOLOGY mLife Pub Date : 2023-12-18 eCollection Date: 2023-12-01 DOI:10.1002/mlf2.12096
Rongrong Zhang, Yajia Huang, Mei Li, Lei Wang, Bing Li, Aiguo Xia, Ye Li, Shuai Yang, Fan Jin
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引用次数: 0

摘要

合成生物学依赖于基因元件的筛选和量化,以组装具有特定功能的复杂基因回路。显微镜是表征复杂细胞表型的强大工具,其空间和时间分辨率不断提高,可用于遗传元件的文库筛选。基于显微镜的检测是表征具有空间和时间分辨率的细胞表型的强大工具,可用于大规模样本的遗传因子文库筛选。然而,高通量显微镜实验的策略仍然有限。在这里,我们介绍了一种基于显微镜的高通量平台,它能同时完成 8 × 12 孔琼脂糖垫板的制备,允许在一次实验中筛选 96 个独立菌株或实验条件。利用该平台,我们筛选了铜绿假单胞菌的天然固有启动子库,并确定了一小部分在不同生长条件下能驱动稳定水平基因表达的稳健启动子。此外,该平台还能进行单细胞遗传因子随时间变化的测量,从而识别复杂的动态表型,以高通量绘制基因型图谱。我们希望利用该平台加速鉴定和表征各种生物系统中的遗传因子,并了解细胞表型与内部状态(包括基因型和基因表达程序)之间的关系。
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High-throughput, microscopy-based screening and quantification of genetic elements.

Synthetic biology relies on the screening and quantification of genetic components to assemble sophisticated gene circuits with specific functions. Microscopy is a powerful tool for characterizing complex cellular phenotypes with increasing spatial and temporal resolution to library screening of genetic elements. Microscopy-based assays are powerful tools for characterizing cellular phenotypes with spatial and temporal resolution and can be applied to large-scale samples for library screening of genetic elements. However, strategies for high-throughput microscopy experiments remain limited. Here, we present a high-throughput, microscopy-based platform that can simultaneously complete the preparation of an 8 × 12-well agarose pad plate, allowing for the screening of 96 independent strains or experimental conditions in a single experiment. Using this platform, we screened a library of natural intrinsic promoters from Pseudomonas aeruginosa and identified a small subset of robust promoters that drives stable levels of gene expression under varying growth conditions. Additionally, the platform allowed for single-cell measurement of genetic elements over time, enabling the identification of complex and dynamic phenotypes to map genotype in high throughput. We expected that the platform could be employed to accelerate the identification and characterization of genetic elements in various biological systems, as well as to understand the relationship between cellular phenotypes and internal states, including genotypes and gene expression programs.

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CiteScore
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