新近从海洋火山渗流中分离出来的蓝藻显示出快速下沉和强劲的高密度生长。

IF 3.9 2区 生物学 Q2 BIOTECHNOLOGY & APPLIED MICROBIOLOGY Applied and Environmental Microbiology Pub Date : 2024-11-20 Epub Date: 2024-10-29 DOI:10.1128/aem.00841-24
Max G Schubert, Tzu-Chieh Tang, Isabella M Goodchild-Michelman, Krista A Ryon, James R Henriksen, Theodore Chavkin, Yanqi Wu, Teemu P Miettinen, Stefanie Van Wychen, Lukas R Dahlin, Davide Spatafora, Gabriele Turco, Michael T Guarnieri, Scott R Manalis, John Kowitz, Elizabeth C Hann, Raja Dhir, Paola Quatrini, Christopher E Mason, George M Church, Marco Milazzo, Braden T Tierney
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引用次数: 0

摘要

蓝藻是一种光合生物,在碳循环中发挥着重要作用,是很有前途的生物生产底盘。在这里,我们从二氧化碳自然升高的独特海洋环境中分离出了两种基因组为 4.6Mbp 的新型蓝藻--UTEX 3221 和 UTEX 3222。我们描述了这两个分离物的完整基因组序列,并重点介绍了UTEX 3222(因其在液体中浮游生长)的生物技术相关生长和生物量特征。UTEX 3222 的生长速度超过了其他在固体培养基上快速生长的模式菌株。它能在液体培养基中每 2.35 小时翻一番,并在批量培养中达到高密度生长(>31 克/升生物量干重),几乎是 Synechococcus sp.此外,UTEX 3222 很容易下沉,沉降速度比其他快速生长的菌株更快,这表明收获 UTEX 3222 的生物量具有良好的经济效益。这些特性可能会使UTEX 3222 成为海洋二氧化碳去除(CDR)和二氧化碳光合生物生产的理想选择。总之,我们发现,在二氧化碳自然升高的环境中进行生物勘探,可能会发现具有独特特征的新型二氧化碳代谢生物:蓝藻为生物制造和通过高效光合固碳应对气候变化提供了潜在途径。本研究发现了从独特的地球化学环境中分离出来的新型光合生物,并描述了它们的基因组、培养生长行为和生化成分。这些蓝藻似乎是一种可操作的研究模型,其培养物及其培养和维护信息均可公开获取。文章讨论了这些生物在碳封存和/或生物制造中的应用,包括与规模化培养相关的菌株的不寻常、快速沉降特性。
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Cyanobacteria newly isolated from marine volcanic seeps display rapid sinking and robust, high-density growth.

Cyanobacteria are photosynthetic organisms that play important roles in carbon cycling and are promising bioproduction chassis. Here, we isolate two novel cyanobacteria with 4.6Mbp genomes, UTEX 3221 and UTEX 3222, from a unique marine environment with naturally elevated CO₂. We describe complete genome sequences for both isolates and, focusing on UTEX 3222 due to its planktonic growth in liquid, characterize biotechnologically relevant growth and biomass characteristics. UTEX 3222 outpaces other fast-growing model strains on a solid medium. It can double every 2.35 hours in a liquid medium and grows to high density (>31 g/L biomass dry weight) in batch culture, nearly double that of Synechococcus sp. PCC 11901, whose high-density growth was recently reported. In addition, UTEX 3222 sinks readily, settling more quickly than other fast-growing strains, suggesting favorable economics of harvesting UTEX 3222 biomass. These traits may make UTEX 3222 a compelling choice for marine carbon dioxide removal (CDR) and photosynthetic bioproduction from CO₂. Overall, we find that bio-prospecting in environments with naturally elevated CO₂ may uncover novel CO₂-metabolizing organisms with unique characteristics.

Importance: Cyanobacteria provide a potential avenue for both biomanufacturing and combatting climate change via high-efficiency photosynthetic carbon sequestration. This study identifies novel photosynthetic organisms isolated from a unique geochemical environment and describes their genomes, growth behavior in culture, and biochemical composition. These cyanobacteria appear to make a tractable research model, and cultures are made publicly available alongside information about their culture and maintenance. Application of these organisms to carbon sequestration and/or biomanufacturing is discussed, including unusual, rapid settling characteristics of the strains relevant to scaled culture.

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来源期刊
Applied and Environmental Microbiology
Applied and Environmental Microbiology 生物-生物工程与应用微生物
CiteScore
7.70
自引率
2.30%
发文量
730
审稿时长
1.9 months
期刊介绍: Applied and Environmental Microbiology (AEM) publishes papers that make significant contributions to (a) applied microbiology, including biotechnology, protein engineering, bioremediation, and food microbiology, (b) microbial ecology, including environmental, organismic, and genomic microbiology, and (c) interdisciplinary microbiology, including invertebrate microbiology, plant microbiology, aquatic microbiology, and geomicrobiology.
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