Cyanobacterial green chemistry: a blue-green approach for a sustainable environment, energy, and chemical production

Priyul Pandey, Deepa Pandey, Anjali Gupta, Rinkesh Gupta, Sapna Tiwari and Shailendra Pratap Singh
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Abstract

Increased human activity due to the ever-increasing global population has necessitated the urgent need for a sustainable environment, food, and energy. Cyanobacteria, classically known as blue-green algae, are oxygen-producing photosynthetic organisms that are emerging as an option to achieve sustainable development goals. These Gram-negative prokaryotes can efficiently sequester atmospheric CO2 due to an efficient carbon concentrating mechanism and divert it to the production of energy-rich compounds, i.e., biofuel, and other valuable chemicals, using their flexible metabolic chassis. Additionally, cyanobacteria also minimize the emission of methane, which is another greenhouse gas, by providing oxygen to methane-oxidizing bacteria. In recent years, several genetically engineered strains of cyanobacteria have been developed that can produce biofuels and several other valuable chemicals. Strains have also been engineered for bioplastic production and bioremediation purposes. These organisms have gained attention as biofertilizers and can increase the quality and fertility of soil. Thus, cyanobacteria are promising CO2 sinks that can contribute to global efforts in carbon capture and storage initiatives while producing bioenergy, cosmetics, pharmaceuticals, and several other valuable chemicals. Therefore, these blue-green cells can be used for green chemistry while minimizing the atmospheric CO2 concentration. In this review, we present various applications of cyanobacterial biomass to achieve sustainable development goals. We also discuss challenges associated with the wide application of cyanobacteria and the future direction to make full use of these robust organisms to fulfill our future demands in an environment-friendly manner.

Abstract Image

蓝藻绿色化学:实现可持续环境、能源和化学品生产的蓝绿方法
由于全球人口不断增加,人类活动增加,迫切需要可持续的环境、食物和能源。蓝藻,通常被称为蓝绿藻,是一种产生氧气的光合生物,正在成为实现可持续发展目标的一种选择。这些革兰氏阴性原核生物可以通过有效的碳浓缩机制有效地隔离大气中的二氧化碳,并利用其灵活的代谢底盘,将其转移到生产富含能量的化合物,即生物燃料和其他有价值的化学物质。此外,蓝藻还通过向甲烷氧化细菌提供氧气,将甲烷(另一种温室气体)的排放降至最低。近年来,已经开发出几种基因工程的蓝藻菌株,可以生产生物燃料和其他几种有价值的化学物质。菌株也被设计用于生物塑料生产和生物修复目的。这些生物作为生物肥料已引起人们的注意,可以提高土壤的质量和肥力。因此,蓝藻是有希望的二氧化碳汇,可以在生产生物能源、化妆品、药品和其他几种有价值的化学品的同时,为全球碳捕获和储存倡议做出贡献。因此,这些蓝绿色电池可以用于绿色化学,同时尽量减少大气中的二氧化碳浓度。在此综述中,我们介绍了蓝藻生物量的各种应用,以实现可持续发展的目标。我们还讨论了与蓝藻广泛应用相关的挑战和未来的方向,以充分利用这些强大的生物,以环境友好的方式满足我们未来的需求。
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