Genetic engineering for enhanced productivity in bioelectrochemical systems.

2区 生物学 Q1 Immunology and Microbiology
Advances in applied microbiology Pub Date : 2020-01-01 Epub Date: 2020-02-08 DOI:10.1016/bs.aambs.2020.01.001
Laura-Alina Philipp, Miriam Edel, Johannes Gescher
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引用次数: 6

Abstract

A shift from petrochemical processes toward a bio-based economy is one of the most advocated developments for a sustainable future. To achieve this will require the biotechnological production of platform chemicals that can be further processed by chemical engineering. Bioelectrochemical systems (BESs) are a novel tool within the biotechnology field. In BESs, microbes serve as biocatalysts for the production of biofuels and value-added compounds, as well as for the production of electricity. Although the general feasibility of bioelectrochemical processes has been demonstrated in recent years, much research has been conducted to develop biocatalysts better suited to meet industrial demands. Initially, mainly natural exoelectrogenic organisms were investigated for their performance in BESs. Driven by possibilities of recent developments in genetic engineering and synthetic biology, the spectrum of microbial catalysts and their versatility (substrate and product range) have expanded significantly. Despite these developments, there is still a tremendous gap between currently achievable space-time yields and current densities on the one hand and the theoretical limits of BESs on the other. It will be necessary to move the performance of the biocatalysts closer to the theoretical possibilities in order to establish viable production routines. This review summarizes the status quo of engineering microbial biocatalysts for anode-applications with high space-time yields. Furthermore, we will address some of the theoretical limitations of these processes exemplarily and discuss which of the present strategies might be combined to achieve highly synergistic effects and, thus, meet industrial demands.

提高生物电化学系统生产力的基因工程。
从石化过程向生物经济的转变是可持续发展的未来最提倡的发展之一。为了实现这一目标,将需要生物技术生产平台化学品,这些化学品可以通过化学工程进一步加工。生物电化学系统(BESs)是生物技术领域的一种新工具。在BESs中,微生物充当生物催化剂,用于生产生物燃料和增值化合物,以及发电。虽然近年来生物电化学过程的总体可行性已经得到证实,但为了开发更适合工业需求的生物催化剂,人们进行了大量的研究。最初,主要研究了天然产电生物在BESs中的表现。在基因工程和合成生物学最新发展的可能性的推动下,微生物催化剂的光谱及其多功能性(底物和产品范围)已显著扩大。尽管取得了这些进展,但在目前可实现的时空产量和电流密度与BESs的理论极限之间仍然存在巨大差距。为了建立可行的生产程序,有必要使生物催化剂的性能更接近理论可能性。本文综述了高时空产率阳极用工程微生物催化剂的研究现状。此外,我们将举例说明这些过程的一些理论局限性,并讨论哪些目前的战略可以结合起来实现高度协同效应,从而满足工业需求。
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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来源期刊
Advances in applied microbiology
Advances in applied microbiology 生物-生物工程与应用微生物
CiteScore
8.20
自引率
0.00%
发文量
16
审稿时长
>12 weeks
期刊介绍: Advances in Applied Microbiology offers intensive reviews of the latest techniques and discoveries in this rapidly moving field. The editors are recognized experts and the format is comprehensive and instructive. Published since 1959, Advances in Applied Microbiology continues to be one of the most widely read and authoritative review sources in microbiology. Recent areas covered include bacterial diversity in the human gut, protozoan grazing of freshwater biofilms, metals in yeast fermentation processes and the interpretation of host-pathogen dialogue through microarrays.
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