Application of Metabolic Engineering Approaches in Enhancing Biological Hydrogen Production

Wenfa Ng
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Abstract

Hydrogen is useful as a fuel and could be produced by a variety of means. One approach uses artificial photosynthesis where energy from sunlight powers the splitting of water into hydrogen and oxygen. But, biological methods for producing hydrogen has emerged strongly over the past decades. In particular, specific microorganisms could use different substrates to produce hydrogen at differing yields. Such fundamental discoveries with industrial applications thus motivated the use of metabolic engineering approaches and methodologies in enhancing biological hydrogen production through a series of enzyme over-expression, pathway debottlenecking, and gene deletion. However, such approaches heavily rely on the selection of an appropriate microbial chassis for biohydrogen production. With the proper strain in hand, use of alternative substrates may engender greater hydrogen productivities. But learning from the bioprocessing field, co-culture of two compatible microorganisms have been sought after for improving biohydrogen production. In addition, thermophilic microbes may also be useful candidates for exploiting hydrogen production from composting. Future outlook in the field looks into filling our gaps in understanding of the metabolic network that feeds into hydrogen production in different organisms. But, more importantly, problems such as reduced growth rate in engineered microbes point to fundamental issues with using genetically engineered microorganisms for improved biohydrogen production, to which clever bioprocess engineering may yield solutions.
代谢工程方法在提高生物制氢中的应用
氢是一种有用的燃料,可以通过多种方式生产。一种方法是利用人工光合作用,利用太阳光的能量将水分解成氢和氧。但是,在过去的几十年里,生产氢气的生物方法已经出现了。特别是,特定的微生物可以使用不同的底物以不同的产量产生氢气。因此,这些具有工业应用的基础发现激发了代谢工程方法和方法的使用,通过一系列酶过表达、途径去瓶颈和基因缺失来增强生物制氢。然而,这种方法严重依赖于选择合适的微生物底盘来生产生物氢。在适当的应变下,使用替代基质可能会产生更高的氢产量。但从生物加工领域的经验来看,两种相容微生物的共培养已成为提高生物制氢率的途径。此外,嗜热微生物也可能是利用堆肥制氢的有用候选者。该领域的未来前景将着眼于填补我们对不同生物体中产生氢的代谢网络的理解空白。但是,更重要的是,诸如工程微生物生长速度降低等问题指出了利用基因工程微生物改善生物制氢的根本问题,而聪明的生物过程工程可能会找到解决方案。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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