丝状真菌基因敲除的高通量微流体快速鉴定

IF 5.7 2区 化学 Q1 CHEMISTRY, ANALYTICAL
Yuwen Li , Jing Dai , Huan Zhang , Han Zhang , Adrian Guzman , Song-I Han , Won Bo Shim , Arum Han
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引用次数: 0

摘要

真菌是一种多样化的真核生物,在全世界的生态系统中有150多万种真菌。许多真菌以菌丝(菌丝)的形式生长,发挥着重要的生态作用,既有有益的,也有有害的。了解它们的功能通常需要产生敲除突变体并与野生型菌株进行比较分析。然而,筛选敲除突变体的传统方法是劳动密集型的,耗时的,并且限制了成功转化体的快速鉴定。在这里,我们提出了一个高通量的液滴微流体平台,能够在单细胞分辨率下筛选和分选真菌转化体,与传统方法相比,显着提高了效率。工作流程包括将单个真菌转化体封装在微升体积的油包水乳化液液滴中,在抗生素的存在下培养它们,并识别和分类含有表现出菌丝生长的转化体的液滴。在抗生素存在下生长的转化体被标记为潜在的基因敲除,然后通过测序进行分类确认。这种方法有几个优点,包括将稻谷镰刀菌原生质体的生长时间缩短3倍,直到它们可以与没有生长的原生质体区分,每小时高达28,800个含有转化体的液滴的筛选吞吐量,以及单孢子表型以最大限度地减少后处理要求。利用该系统,我们成功筛选了24000个含液滴的F. graminearum转化子,鉴定出5个在琼脂板上生长的潜在转化子,其中2个通过测序确认为真敲除。这些结果证明了这种基于微流体液滴的平台作为加速真菌功能基因组学和推进我们对真菌生态作用的理解的强大工具的实用性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Rapid filamentous fungi gene knockout identification through high-throughput droplet microfluidics

Rapid filamentous fungi gene knockout identification through high-throughput droplet microfluidics

Rapid filamentous fungi gene knockout identification through high-throughput droplet microfluidics
Fungi are a diverse group of eukaryotic organisms, with over 1.5 million species inhabiting ecosystems worldwide. Many fungi grow as filaments (hyphae) and play critical ecological roles, both beneficial and harmful. Understanding their functions often requires generating knockout mutants and performing comparative analyses with wild-type strains. However, traditional methods for screening knockout mutants are labor-intensive, time-consuming, and limit the rapid identification of successful transformants. Here, we present a high-throughput droplet microfluidics platform capable of screening and sorting fungal transformants at single-cell resolution, significantly improving efficiency compared to conventional methods. The workflow involves encapsulating individual fungal transformants in pico-liter-volume water-in-oil emulsion droplets, culturing them in the presence of antibiotics, and identifying and sorting droplets containing transformants that exhibit hyphal growth. Transformants that grow in the presence of antibiotics are flagged as potential knockouts and then sorted out for confirmation through sequencing. This approach offers several advantages, including a 3-fold reduction in time for Fusarium graminearum protoplast growth until they can be distinguished from those exhibiting no growth, a screening throughput of up to 28,800 transformant-containing droplets per hour, and single-spore phenotyping to minimize post-processing requirements. Using this system, we successfully screened 24,000 F. graminearum transformants containing droplets, identified five potential transformants that exhibit growth on agar plates, of which two were confirmed via sequencing as true knockouts. These results demonstrate the utility of this droplet microfluidics-based platform as a powerful tool for accelerating fungal functional genomics and advancing our understanding of the ecological roles of fungi.
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来源期刊
Analytica Chimica Acta
Analytica Chimica Acta 化学-分析化学
CiteScore
10.40
自引率
6.50%
发文量
1081
审稿时长
38 days
期刊介绍: Analytica Chimica Acta has an open access mirror journal Analytica Chimica Acta: X, sharing the same aims and scope, editorial team, submission system and rigorous peer review. Analytica Chimica Acta provides a forum for the rapid publication of original research, and critical, comprehensive reviews dealing with all aspects of fundamental and applied modern analytical chemistry. The journal welcomes the submission of research papers which report studies concerning the development of new and significant analytical methodologies. In determining the suitability of submitted articles for publication, particular scrutiny will be placed on the degree of novelty and impact of the research and the extent to which it adds to the existing body of knowledge in analytical chemistry.
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