利用硒代半胱氨酸增强微生物细胞工厂制氢。

Armaan Patel, David W Mulder, Dieter Söll, Natalie Krahn
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引用次数: 0

摘要

氢是一种清洁的可再生能源,当它与氧气结合时,只产生水蒸气作为双产物,就能产生热和电。此外,按重量计算,它的能量含量是所有已知燃料中最高的。因此,各种各样的策略已经设计出了有效生产氢气的方法,并且对经济有兴趣。为了从生物学的角度理解产生氢的概念,我们将注意力集中在微生物中自然产生的氢化酶上。这些生物有生产氢的机制,如果设计巧妙,可以在细胞工厂中使用,从而产生大量的氢。并不是所有的氢化酶都能有效地产氢,而那些有效的,往往对氧敏感。因此,我们为引入硒代半胱氨酸(一种高活性的蛋白质原氨基酸)作为工程加氢酶的策略提供了一个新的视角,该策略可以增强氢气的产生或增加氧耐受性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Harnessing selenocysteine to enhance microbial cell factories for hydrogen production.

Harnessing selenocysteine to enhance microbial cell factories for hydrogen production.

Harnessing selenocysteine to enhance microbial cell factories for hydrogen production.

Hydrogen is a clean, renewable energy source, that when combined with oxygen, produces heat and electricity with only water vapor as a biproduct. Furthermore, it has the highest energy content by weight of all known fuels. As a result, various strategies have engineered methods to produce hydrogen efficiently and in quantities that are of interest to the economy. To approach the notion of producing hydrogen from a biological perspective, we take our attention to hydrogenases which are naturally produced in microbes. These organisms have the machinery to produce hydrogen, which when cleverly engineered, could be useful in cell factories resulting in large production of hydrogen. Not all hydrogenases are efficient at hydrogen production, and those that are, tend to be oxygen sensitive. Therefore, we provide a new perspective on introducing selenocysteine, a highly reactive proteinogenic amino acid, as a strategy towards engineering hydrogenases with enhanced hydrogen production, or increased oxygen tolerance.

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