Variability in cell-free expression reactions can impact qualitative genetic circuit characterization.

IF 2.6 Q2 BIOCHEMICAL RESEARCH METHODS
Synthetic biology (Oxford, England) Pub Date : 2022-08-02 eCollection Date: 2022-01-01 DOI:10.1093/synbio/ysac011
Katherine A Rhea, Nathan D McDonald, Stephanie D Cole, Vincent Noireaux, Matthew W Lux, Patricia E Buckley
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引用次数: 4

Abstract

Cell-free expression systems provide a suite of tools that are used in applications from sensing to biomanufacturing. One of these applications is genetic circuit prototyping, where the lack of cloning is required and a high degree of control over reaction components and conditions enables rapid testing of design candidates. Many studies have shown utility in the approach for characterizing genetic regulation elements, simple genetic circuit motifs, protein variants or metabolic pathways. However, variability in cell-free expression systems is a known challenge, whether between individuals, laboratories, instruments, or batches of materials. While the issue of variability has begun to be quantified and explored, little effort has been put into understanding the implications of this variability. For genetic circuit prototyping, it is unclear when and how significantly variability in reaction activity will impact qualitative assessments of genetic components, e.g. relative activity between promoters. Here, we explore this question by assessing DNA titrations of seven genetic circuits of increasing complexity using reaction conditions that ostensibly follow the same protocol but vary by person, instrument and material batch. Although the raw activities vary widely between the conditions, by normalizing within each circuit across conditions, reasonably consistent qualitative performance emerges for the simpler circuits. For the most complex case involving expression of three proteins, we observe a departure from this qualitative consistency, offering a provisional cautionary line where normal variability may disrupt reliable reuse of prototyping results. Our results also suggest that a previously described closed loop controller circuit may help to mitigate such variability, encouraging further work to design systems that are robust to variability. Graphical Abstract.

Abstract Image

Abstract Image

无细胞表达反应的可变性可以影响定性遗传回路表征。
无细胞表达系统提供了一套工具,用于从传感到生物制造的应用。其中一个应用是遗传电路原型,其中不需要克隆,并且对反应成分和条件的高度控制使设计候选的快速测试成为可能。许多研究表明,该方法在表征遗传调控元件、简单遗传电路基序、蛋白质变异或代谢途径方面具有实用价值。然而,无论是在个体、实验室、仪器还是材料批次之间,无细胞表达系统的可变性都是一个已知的挑战。虽然可变性的问题已经开始被量化和探索,但很少有人努力去理解这种可变性的含义。对于遗传电路原型,尚不清楚反应活性的可变性何时以及如何显著影响遗传成分的定性评估,例如启动子之间的相对活性。在这里,我们通过使用表面上遵循相同协议但因人、仪器和材料批次而异的反应条件,评估七个日益复杂的遗传电路的DNA滴定来探索这个问题。尽管原始活动在不同的条件下差异很大,但通过在不同条件下的每个电路内进行规范化,较简单的电路出现了相当一致的定性性能。对于涉及三种蛋白质表达的最复杂的情况,我们观察到这种定性一致性的偏离,提供了一个临时的警告线,正常的可变性可能会破坏原型结果的可靠重用。我们的研究结果还表明,先前描述的闭环控制电路可能有助于减轻这种可变性,鼓励进一步设计对可变性具有鲁棒性的系统。图形抽象。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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