Engineering the Novel Extremophile Alga Chlamydomonas pacifica for High Lipid and High Starch Production as a Path to Developing Commercially Relevant Strains.

IF 7.4 Q1 ENGINEERING, ENVIRONMENTAL
ACS ES&T engineering Pub Date : 2024-11-25 eCollection Date: 2025-01-10 DOI:10.1021/acsestengg.4c00443
Abhishek Gupta, João Vitor Dutra Molino, Kathryn M J Wnuk-Fink, Aaron Bruckbauer, Marissa Tessman, Kalisa Kang, Crisandra J Diaz, Barbara Saucedo, Ashleyn Malik, Michael D Burkart, Stephen P Mayfield
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引用次数: 0

Abstract

Microalgae offer a compelling platform for the production of commodity products, due to their superior photosynthetic efficiency, adaptability to nonarable lands and nonpotable water, and their capacity to produce a versatile array of bioproducts, including biofuels and biomaterials. However, the scalability of microalgae as a bioresource has been hindered by challenges such as costly biomass production related to vulnerability to pond crashes during large-scale cultivation. This study presents a pipeline for the genetic engineering and pilot-scale production of biodiesel and thermoplastic polyurethane precursors in the extremophile species Chlamydomonas pacifica. This extremophile microalga exhibits exceptional resilience to high pH (>11.5), high salinity (up to 2% NaCl), and elevated temperatures (up to 42 °C). Initially, we evolved this strain to also have a high tolerance to high light intensity (>2000 μE/m2/s) through mutagenesis, breeding, and selection. We subsequently genetically engineered C. pacifica to significantly enhance lipid production by 28% and starch accumulation by 27%, all without affecting its growth rate. We demonstrated the scalability of these engineered strains by cultivating them in pilot-scale raceway ponds and converting the resulting biomass into biodiesel and thermoplastic polyurethanes. This study showcases the complete cycle of transforming a newly discovered species into a commercially relevant commodity production strain. This research underscores the potential of extremophile algae, including C. pacifica, as a key species for the burgeoning sustainable bioeconomy, offering a viable path forward in mitigating environmental challenges and supporting global bioproduct demands.

高脂高淀粉生产的新型极端微生物太平洋衣藻的工程设计作为开发商业相关菌株的途径。
微藻由于其优越的光合效率、对非耕地和非饮用水的适应性以及生产包括生物燃料和生物材料在内的多种生物产品的能力,为生产商品产品提供了一个令人信服的平台。然而,微藻作为一种生物资源的可扩展性一直受到一些挑战的阻碍,例如大规模养殖过程中容易发生池塘崩溃等高昂的生物质生产成本。本研究提出了在极端微生物物种太平洋衣藻中进行生物柴油和热塑性聚氨酯前体的基因工程和中试生产的管道。这种嗜极微藻表现出对高pH值(>11.5)、高盐度(高达2% NaCl)和高温(高达42°C)的特殊适应能力。最初,我们通过诱变、育种和选择,使该菌株也具有对高光强(>2000 μE/m2/s)的高耐受性。随后,我们对太平洋紫菜进行了基因改造,使其脂肪产量显著提高28%,淀粉积累显著提高27%,而生长速度却没有受到影响。我们通过在中试规模的跑道池塘中培养这些工程菌株,并将所得生物质转化为生物柴油和热塑性聚氨酯,证明了这些工程菌株的可扩展性。这项研究展示了将新发现的物种转化为具有商业意义的商品生产菌株的完整周期。这项研究强调了极端微生物藻类的潜力,包括太平洋藻,作为蓬勃发展的可持续生物经济的关键物种,为减轻环境挑战和支持全球生物产品需求提供了可行的前进道路。
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来源期刊
ACS ES&T engineering
ACS ES&T engineering ENGINEERING, ENVIRONMENTAL-
CiteScore
8.50
自引率
0.00%
发文量
0
期刊介绍: ACS ES&T Engineering publishes impactful research and review articles across all realms of environmental technology and engineering, employing a rigorous peer-review process. As a specialized journal, it aims to provide an international platform for research and innovation, inviting contributions on materials technologies, processes, data analytics, and engineering systems that can effectively manage, protect, and remediate air, water, and soil quality, as well as treat wastes and recover resources. The journal encourages research that supports informed decision-making within complex engineered systems and is grounded in mechanistic science and analytics, describing intricate environmental engineering systems. It considers papers presenting novel advancements, spanning from laboratory discovery to field-based application. However, case or demonstration studies lacking significant scientific advancements and technological innovations are not within its scope. Contributions containing experimental and/or theoretical methods, rooted in engineering principles and integrated with knowledge from other disciplines, are welcomed.
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