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通过去除多个限制系统提高外源 DNA 向运动发酵单胞菌 ZM4 菌株的转移。

Improving Mobilization of Foreign DNA into Zymomonas mobilis Strain ZM4 by Removal of Multiple Restriction Systems.

机构信息

DOE Great Lakes Bioenergy Research Center, University of Wisconsin-Madison, Madison, Wisconsin, USA.

Department of Biomolecular Chemistry, University of Wisconsin-Madison, Madison, Wisconsin, USA.

出版信息

Appl Environ Microbiol. 2021 Sep 10;87(19):e0080821. doi: 10.1128/AEM.00808-21.

Abstract

Zymomonas mobilis has emerged as a promising candidate for production of high-value bioproducts from plant biomass. However, a major limitation in equipping Z. mobilis with novel pathways to achieve this goal is restriction of heterologous DNA. Here, we characterized the contribution of several defense systems of Z. mobilis strain ZM4 to impeding heterologous gene transfer from an Escherichia coli donor. Bioinformatic analysis revealed that Z. mobilis ZM4 encodes a previously described -like type IV restriction modification (RM) system, a type I-F CRISPR system, a chromosomal type I RM system (), and a previously uncharacterized type I RM system, located on an endogenous plasmid (). The DNA recognition motif of HsdRMS was identified by comparing the methylated DNA sequence pattern of mutants lacking one or both of the and systems to that of the parent strain. The conjugation efficiency of synthetic plasmids containing single or combinations of the HsdMS and HsdRMS recognition sites indicated that both systems are active and decrease uptake of foreign DNA. In contrast, deletions of and led to no detectable improvement in conjugation efficiency for the exogenous DNA tested. Thus, the suite of markerless restriction-negative strains that we constructed and the knowledge of this new restriction system and its DNA recognition motif provide the necessary platform to flexibly engineer the next generation of Z. mobilis strains for synthesis of valuable products. Zymomonas mobilis is equipped with a number of traits that make it a desirable platform organism for metabolic engineering to produce valuable bioproducts. Engineering strains equipped with synthetic pathways for biosynthesis of new molecules requires integration of foreign genes. In this study, we developed an all-purpose strain, devoid of known host restriction systems and free of any antibiotic resistance markers, which dramatically improves the uptake efficiency of heterologous DNA into Z. mobilis ZM4. We also confirmed the role of a previously known restriction system as well as identifying a previously unknown type I RM system on an endogenous plasmid. Elimination of the barriers to DNA uptake as shown here will allow facile genetic engineering of Z. mobilis.

摘要

运动发酵单胞菌已成为从植物生物质生产高价值生物制品的有前途的候选者。然而,为了实现这一目标,为运动发酵单胞菌配备新途径的主要限制因素是异源 DNA 的限制。在这里,我们研究了运动发酵单胞菌 ZM4 中的几种防御系统对阻止大肠杆菌供体中外源基因转移的贡献。生物信息学分析表明,运动发酵单胞菌 ZM4 编码了一种以前描述过的 -样 IV 型限制修饰(RM)系统、一种 I-F CRISPR 系统、一种染色体 I 型 RM 系统()和一种以前未表征的 I 型 RM 系统,位于一个内源性质粒()上。通过比较缺失一个或两个和系统的突变体中甲基化 DNA 序列模式与亲本菌株的甲基化 DNA 序列模式,鉴定了 HsdRMS 的 DNA 识别模体。含有单个或组合 HsdMS 和 HsdRMS 识别位点的合成质粒的接合效率表明,两个系统均为活性,并且减少了外来 DNA 的摄取。相比之下,和的缺失导致对外源 DNA 的接合效率没有明显提高。因此,我们构建的一系列无标记限制阴性菌株以及对该新限制系统及其 DNA 识别模体的了解为灵活地工程化下一代运动发酵单胞菌菌株以合成有价值的产品提供了必要的平台。

运动发酵单胞菌具有许多使其成为生产有价值生物制品的代谢工程理想平台生物的特性。为了合成新分子而对工程菌株进行合成途径的改造需要整合外源基因。在这项研究中,我们开发了一种通用菌株,该菌株缺乏已知的宿主限制系统且不含任何抗生素抗性标记,这极大地提高了异源 DNA 进入运动发酵单胞菌 ZM4 的摄取效率。我们还证实了以前已知的限制系统的作用,并在一个内源性质粒上鉴定了一个以前未知的 I 型 RM 系统。如这里所示消除 DNA 摄取的障碍将允许对运动发酵单胞菌进行简便的遗传工程改造。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/905b/8432527/533c5089ccb7/aem.00808-21-f001.jpg

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