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Pheromone-inducible expression vectors for fission yeast Schizosaccharomyces pombe.用于裂殖酵母粟酒裂殖酵母的信息素诱导表达载体。
Plasmid. 2018 Jan;95:1-6. doi: 10.1016/j.plasmid.2017.11.002. Epub 2017 Nov 26.
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Interrelationships of VEL1 and ENV1 in light response and development in Trichoderma reesei.里氏木霉中VEL1和ENV1在光反应及发育过程中的相互关系
PLoS One. 2017 Apr 19;12(4):e0175946. doi: 10.1371/journal.pone.0175946. eCollection 2017.
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Fungal Sex: The Mucoromycota.真菌的性别:毛霉门。
Microbiol Spectr. 2017 Mar;5(2). doi: 10.1128/microbiolspec.FUNK-0041-2017.
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Synthetic photosynthetic consortia define interactions leading to robustness and photoproduction.合成光合菌群定义了导致稳健性和光生产的相互作用。
J Biol Eng. 2017 Jan 23;11:4. doi: 10.1186/s13036-017-0048-5. eCollection 2017.
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Structure-Activity Relationship of α Mating Pheromone from the Fungal Pathogen .真菌病原体α交配信息素的构效关系
J Biol Chem. 2017 Mar 3;292(9):3591-3602. doi: 10.1074/jbc.M116.766311. Epub 2017 Jan 18.
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Deciphering fungal dimorphism: Farnesol's unanswered questions.解读真菌双态性:法尼醇未解决的问题。
Mol Microbiol. 2017 Feb;103(4):567-575. doi: 10.1111/mmi.13601. Epub 2017 Jan 18.
8
Comparative Analysis Highlights Variable Genome Content of Wheat Rusts and Divergence of the Mating Loci.比较分析突出了小麦锈病可变的基因组内容以及交配位点的差异。
G3 (Bethesda). 2017 Feb 9;7(2):361-376. doi: 10.1534/g3.116.032797.
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Fungal Sex: The Ascomycota.真菌的性别:子囊菌门。
Microbiol Spectr. 2016 Oct;4(5). doi: 10.1128/microbiolspec.FUNK-0005-2016.
10
Characterization of MAT gene functions in the life cycle of Sclerotinia sclerotiorum reveals a lineage-specific MAT gene functioning in apothecium morphogenesis.核盘菌生命周期中MAT基因功能的表征揭示了一个在子囊盘形态发生中起作用的谱系特异性MAT基因。
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生物过程控制中的新方法:基于真菌信息素的合成细胞间通讯的联合体指导

New approaches in bioprocess-control: Consortium guidance by synthetic cell-cell communication based on fungal pheromones.

作者信息

Hennig Stefan, Wenzel Mandy, Haas Christiane, Hoffmann Andreas, Weber Jost, Rödel Gerhard, Ostermann Kai

机构信息

Institute of Genetics Technische Universität Dresden Dresden Germany.

Institute of Natural Materials Technology Technische Universität Dresden Dresden Germany.

出版信息

Eng Life Sci. 2018 Apr 14;18(6):387-400. doi: 10.1002/elsc.201700181. eCollection 2018 Jun.

DOI:10.1002/elsc.201700181
PMID:32624919
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC6999462/
Abstract

Bioconversions in industrial processes are currently dominated by single-strain approaches. With the growing complexity of tasks to be carried out, microbial consortia become increasingly advantageous and eventually may outperform single-strain fermentations. Consortium approaches benefit from the combined metabolic capabilities of highly specialized strains and species, and the inherent division of labor reduces the metabolic burden for each strain while increasing product yields and reaction specificities. However, consortium-based designs still suffer from a lack of available tools to control the behavior and performance of the individual subpopulations and of the entire consortium. Here, we propose to implement novel control elements for microbial consortia based on artificial cell-cell communication fungal mating pheromones. Coupling to the desired output is mediated by pheromone-responsive gene expression, thereby creating pheromone-dependent communication channels between different subpopulations of the consortia. We highlight the benefits of artificial communication to specifically target individual subpopulations of microbial consortia and to control . their metabolic profile or proliferation rate in a predefined and customized manner. Due to the steadily increasing knowledge of sexual cycles of industrially relevant fungi, a growing number of strains and species can be integrated into pheromone-controlled sensor-actor systems, exploiting their unique metabolic properties for microbial consortia approaches.

摘要

工业过程中的生物转化目前主要采用单菌株方法。随着要执行任务的复杂性不断增加,微生物群落变得越来越具有优势,最终可能会超过单菌株发酵。群落方法受益于高度专业化菌株和物种的综合代谢能力,内在的分工减少了每个菌株的代谢负担,同时提高了产品产量和反应特异性。然而,基于群落的设计仍然缺乏可用的工具来控制各个亚群以及整个群落的行为和性能。在此,我们提议基于人工细胞间通讯——真菌交配信息素,为微生物群落实施新型控制元件。与期望输出的耦合由信息素响应基因表达介导,从而在群落的不同亚群之间创建依赖于信息素的通讯通道。我们强调人工通讯的好处,即能够特异性地靶向微生物群落的各个亚群并进行控制。以预定义和定制的方式控制它们的代谢谱或增殖速率。由于对工业相关真菌有性周期的了解不断增加,越来越多的菌株和物种可以整合到信息素控制的传感-作用系统中,利用它们独特的代谢特性用于微生物群落方法。