具有改变细胞壁的普通小球藻突变体表现出增加的渗透性和增强的细胞内分子的可提取性。

IF 6.1 1区 工程技术 Q1 BIOTECHNOLOGY & APPLIED MICROBIOLOGY
Paolo Canteri, Claudia Battarra, Giulia Mandalà, Francesca Monti, Erika Bellini, Nora Hidasi, Zeno Guardini, Simone Ferrari, Roberto Bassi, Luca Dall’Osto
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引用次数: 0

摘要

背景:微藻的大规模培养为提取有价值化合物和生产可再生燃料提供了一种碳中性的生物质来源。由于其高代谢活性和繁殖速度快,小球藻在光生物反应器中生长时具有很高的生产力。然而,野生型菌株有一些生物学限制,这使得藻类生物产品比传统来源的生物产品更昂贵。因此,改良品系需要驯化。小球藻具有复杂的化学性质和高抗性的细胞壁,使改造变得困难。细胞壁也限制了有机溶剂的扩散;因此,限制了有价值的细胞内化合物的提取。获得细胞壁较弱的菌株对于提高细胞内分子的可提取性、降低生物量破坏的成本和提高遗传转化效率至关重要。结果:我们建立了一种结合单细胞荧光扫描的小球藻突变管道,以鉴定细胞壁特性改变的突变体。我们用荧光染料红素B和钙荧光白分别作为细胞壁通透性和细胞壁结构多糖结合的标记。采用荧光活化细胞分选的流式细胞术来富集具有改变发射谱的突变群体。在第一轮诱变后,我们发现6个突变体对红细胞红素B的通透性明显高于野生型(CWP系),细胞壁结构和组成也发生了改变。对选定的CWP菌株进行第二轮诱变,然后选择较低的钙荧光白信号,结果分离出CFW系,当生物质受到细胞破坏程序时,其机械抗性降低。这两步程序使我们能够鉴定出细胞壁通透性增加和机械阻力降低的新突变株,使小球藻驯化迈出了新的一步。结论:本研究证明了利用基于流式细胞术筛选的诱变和表型选择技术改变普通葡萄球菌细胞壁的可行性,并鉴定出具有改良性状的有希望用于工业应用的菌株。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Chlorella vulgaris mutants with altered cell walls show increased permeability and enhanced extractability of intracellular molecules

Background

Large-scale cultivation of microalgae provides a carbon–neutral source of biomass for extracting valuable compounds and producing renewable fuels. Owing to their high metabolic activity and rapid reproduction rates, Chlorella species are highly productive when grown in photobioreactors. However, wild-type strains have some biological limitations that make algal bioproducts more expensive than those from more traditional sources. Domestication is thus required for improving strains. Engineering Chlorella species has been made difficult by their chemically complex and highly resistant cell wall, making transformation difficult. Cell wall also restricts diffusion of organic solvents; thus, limiting the extraction of valuable intracellular compounds. Obtaining strains with weakened cell wall is crucial to enhance the extractability of intracellular molecules, reducing the costs of biomass disruption, and to improve genetic transformation efficiency.

Results

We developed a mutagenesis pipeline combined with single-cell fluorescence scanning on the microalga Chlorella vulgaris to identify mutants with altered cell wall properties. We used the fluorescent dyes erythrosin B and calcofluor white, as markers for cell wall permeability and for binding the structural polysaccharides of the cell wall, respectively. Flow cytometry with fluorescence-activated cell sorting was employed to enrich mutagenized populations with altered emission profiles. After a first round of mutagenesis, we found six mutants with significantly higher cell permeability to erythrosin B than the wild type (CWP lines) and altered cell wall structure and composition. A second round of mutagenesis on a selected CWP strain, followed by selection for lower calcofluor white signal, resulted in the isolation of CFW lines, which exhibited reduced mechanical resistance when the biomass was subjected to cell disruption procedures. This two-steps procedure allowed us to identify new mutant strains with both an increased cell wall permeability and a reduced mechanical resistance, making a novel step towards Chlorella domestication.

Conclusions

This study demonstrated the feasibility of using mutagenesis and phenotypic selection based on flow cytometry screening to alter the cell wall of C. vulgaris and identify promising strains with improved traits for industrial applications.

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来源期刊
Biotechnology for Biofuels
Biotechnology for Biofuels 工程技术-生物工程与应用微生物
自引率
0.00%
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0
审稿时长
2.7 months
期刊介绍: Biotechnology for Biofuels is an open access peer-reviewed journal featuring high-quality studies describing technological and operational advances in the production of biofuels, chemicals and other bioproducts. The journal emphasizes understanding and advancing the application of biotechnology and synergistic operations to improve plants and biological conversion systems for the biological production of these products from biomass, intermediates derived from biomass, or CO2, as well as upstream or downstream operations that are integral to biological conversion of biomass. Biotechnology for Biofuels focuses on the following areas: • Development of terrestrial plant feedstocks • Development of algal feedstocks • Biomass pretreatment, fractionation and extraction for biological conversion • Enzyme engineering, production and analysis • Bacterial genetics, physiology and metabolic engineering • Fungal/yeast genetics, physiology and metabolic engineering • Fermentation, biocatalytic conversion and reaction dynamics • Biological production of chemicals and bioproducts from biomass • Anaerobic digestion, biohydrogen and bioelectricity • Bioprocess integration, techno-economic analysis, modelling and policy • Life cycle assessment and environmental impact analysis
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