Traditional protocols and optimization methods lead to absent expression in a mycoplasma cell-free gene expression platform.

IF 2.6 Q2 BIOCHEMICAL RESEARCH METHODS
Synthetic biology (Oxford, England) Pub Date : 2022-05-21 eCollection Date: 2022-01-01 DOI:10.1093/synbio/ysac008
Andrei Sakai, Christopher R Deich, Frank H T Nelissen, Aafke J Jonker, Daniela M de C Bittencourt, Christopher P Kempes, Kim S Wise, Hans A Heus, Wilhelm T S Huck, Katarzyna P Adamala, John I Glass
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引用次数: 1

Abstract

Cell-free expression (CFE) systems are one of the main platforms for building synthetic cells. A major drawback is the orthogonality of cell-free systems across species. To generate a CFE system compatible with recently established minimal cell constructs, we attempted to optimize a Mycoplasma bacterium-based CFE system using lysates of the genome-minimized cell JCVI-syn3A (Syn3A) and its close phylogenetic relative Mycoplasma capricolum (Mcap). To produce mycoplasma-derived crude lysates, we systematically tested methods commonly used for bacteria, based on the S30 protocol of Escherichia coli. Unexpectedly, after numerous attempts to optimize lysate production methods or composition of feeding buffer, none of the Mcap or Syn3A lysates supported cell-free gene expression. Only modest levels of in vitro transcription of RNA aptamers were observed. While our experimental systems were intended to perform transcription and translation, our assays focused on RNA. Further investigations identified persistently high ribonuclease (RNase) activity in all lysates, despite removal of recognizable nucleases from the respective genomes and attempts to inhibit nuclease activities in assorted CFE preparations. An alternative method using digitonin to permeabilize the mycoplasma cell membrane produced a lysate with diminished RNase activity yet still was unable to support cell-free gene expression. We found that intact mycoplasma cells poisoned E. coli cell-free extracts by degrading ribosomal RNAs, indicating that the mycoplasma cells, even the minimal cell, have a surface-associated RNase activity. However, it is not clear which gene encodes the RNase. This work summarizes attempts to produce mycoplasma-based CFE and serves as a cautionary tale for researchers entering this field. Graphical Abstract.

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传统的方案和优化方法导致无支原体细胞基因表达平台缺失表达。
无细胞表达(CFE)系统是构建合成细胞的主要平台之一。一个主要的缺点是跨物种的无细胞系统的正交性。为了生成与最近建立的最小细胞结构兼容的CFE系统,我们试图利用基因组最小化细胞JCVI-syn3A (Syn3A)及其近亲山羊支原体(Mcap)的裂解物优化基于支原体细菌的CFE系统。为了生产支原体衍生的粗裂解物,我们系统地测试了细菌常用的方法,基于大肠杆菌的S30协议。出乎意料的是,经过多次优化裂解物生产方法或饲喂缓冲液组成的尝试,没有Mcap或Syn3A裂解物支持无细胞基因表达。仅观察到中等水平的RNA适体体外转录。虽然我们的实验系统旨在进行转录和翻译,但我们的分析主要集中在RNA上。进一步的研究发现,尽管从各自的基因组中去除可识别的核酸酶,并试图抑制各种CFE制剂中的核酸酶活性,但所有裂解物的核糖核酸酶(RNase)活性都持续较高。另一种使用洋地黄苷渗透支原体细胞膜的方法产生了RNase活性降低的裂解物,但仍然无法支持无细胞基因表达。我们发现完整的支原体细胞通过降解核糖体rna毒害大肠杆菌无细胞提取物,这表明支原体细胞,即使是最小的细胞,也具有表面相关的RNase活性。然而,目前尚不清楚是哪个基因编码RNase。这项工作总结了生产基于支原体的CFE的尝试,并为进入该领域的研究人员提供了一个警示。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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