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Photoautotroph-Methanotroph Coculture - A Flexible Platform for Efficient Biological CO_2-CH_4 Co-utilization

机译:PhotoAutotroph-甲硝蛋白酶 - 一种灵活的高效生物CO_2-CH_4共同利用平台

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Industrial, municipal, and agricultural waste streams contain stranded organic carbon, which can be converted into biogas through anaerobic digestion. It has been demonstrated that biogas has immense potential as a renewable feedstock for producing high-density fuels and commodity chemicals. However, the utilization of biogas presents a significant challenge due to its low pressure and presence of contaminants such as H_2S, ammonia, and volatile organic carbon compounds. To tap into this immense potential, effective biotechnologies that co-utilize both CO_2 and CH_4 are needed. Using the basic metabolic coupling principles utilized by many natural consortia, we have demonstrated that photoautotroph-methanotroph co-cultures offers a flexible and highly promising platform for biological CO_2/CH_4 co-utilization. In this work, we present the very first effort to quantitatively model the growth dynamics of a photoautotroph-methanotroph coculture, as well as the experimental and computational tools that are required to characterize the coculture. Together, these advancements will enable us to further examine the potential interspecies interactions within the coculture.
机译:工业,市政和农业废物流含有链状有机碳,可通过厌氧消化转化为沼气。已经证明,沼气具有巨大的潜力,作为可再生原料,用于生产高密度燃料和商品化学品。然而,由于其低压和污染物如H_2S,氨和挥发性有机碳化合物,因此沼气的利用具有显着的挑战。为了进入这种巨大的潜在的潜在,需要共同使用CO_2和CH_4的有效生物技术。利用许多天然联盟利用的基本代谢耦合原理,我们已经证明了光滑型培养术共同培养物为生物CO_2 / CH_4共同利用提供了灵活且高度有前途的平台。在这项工作中,我们提供了定量地模拟光学培养型培养妇科的生长动态的第一次努力,以及鉴于共同化的实验和计算工具。在一起,这些进步将使我们进一步检查群体内的潜在界面的互动。

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