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Synthetic biology and biomass conversion: a match made in heaven?

机译:合成生物学和生物质转化:天造地设的一对?

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摘要

To move our economy onto a sustainable basis, it is essential that we find a replacement for fossil carbon as a source of liquid fuels and chemical industry feedstocks. Lignocellulosic biomass, available in enormous quantities, is the only feasible replacement. Many micro-organisms are capable of rapid and efficient degradation of biomass, employing a battery of specialized enzymes, but do not produce useful products. Attempts to transfer biomass-degrading capability to industrially useful organisms by heterologous expression of one or a few biomass-degrading enzymes have met with limited success. It seems probable that an effective biomass-degradation system requires the synergistic action of a large number of enzymes, the individual and collective actions of which are poorly understood. By offering the ability to combine any number of transgenes in a modular, combinatorial way, synthetic biology offers a new approach to elucidating the synergistic action of combinations of biomass-degrading enzymes in vivo and may ultimately lead to a transferable biomass-degradation system. Also, synthetic biology offers the potential for assembly of novel product-formation pathways, as well as mechanisms for increased solvent tolerance. Thus, synthetic biology may finally lead to cheap and effective processes for conversion of biomass to useful products.
机译:为了使我们的经济迈向可持续发展的基础,我们必须找到化石碳的替代品,以作为液体燃料和化学工业原料的来源。大量可用的木质纤维素生物质是唯一可行的替代方法。许多微生物能够利用一连串的专用酶快速有效地降解生物质,但不会产生有用的产物。通过异源表达一种或几种降解生物质的酶将降解生物质的能力转移到工业上有用的生物的尝试取得了有限的成功。看来有效的生物质降解系统可能需要大量酶的协同作用,而这些酶的个别和集体作用却鲜为人知。通过提供以模块化组合方式组合任意数量的转基因的能力,合成生物学提供了一种新的方法来阐明体内生物质降解酶组合的协同作用,并最终可能导致可转移的生物质降解系统。同样,合成生物学为组装新的产物形成途径提供了潜力,并为增加溶剂耐受性提供了机制。因此,合成生物学最终可能导致廉价且有效的过程,以将生物质转化为有用的产品。

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