Jeucken Aike, Zhou Miaomiao, Wösten Marc M S M, Brouwers Jos F
Membrane Enzymology, Groningen Biomolecular and Biotechnology Institute (GBB), University of Groningen, 9747 AG Groningen, The Netherlands.
Research Group Analysis Techniques in the Life Sciences, School of Life Sciences and Environmental Technology ATGM, Avans University of Applied Sciences, 4818 AJ Breda, The Netherlands.
Metabolites. 2021 Apr 29;11(5):286. doi: 10.3390/metabo11050286.
The versatile compound -butanol is one of the most promising biofuels for use in existing internal combustion engines, contributing to a smooth transition towards a clean energy society. Furthermore, -butanol is a valuable resource to produce more complex molecules such as bioplastics. Microbial production of -butanol from waste materials is hampered by the biotoxicity of -butanol as it interferes with the proper functioning of lipid membranes. In this study we perform a large-scale investigation of the complete lipid-related enzyme machinery and its response to exposure to a sublethal concentration of -butanol. We profiled, in triplicate, the growth characteristics and phospholipidomes of 116 different genetic constructs of , both in the presence and absence of 0.5% -butanol (/). This led to the identification of 230 lipid species and subsequently to the reconstruction of the network of metabolites, enzymes and lipid properties driving the homeostasis of the lipidome. We were able to identify key lipids and biochemical pathways leading to altered -butanol tolerance. The data led to new conceptual insights into the bacterial lipid metabolism which are discussed.
通用化合物丁醇是现有内燃机中最有前途的生物燃料之一,有助于向清洁能源社会平稳过渡。此外,丁醇是生产生物塑料等更复杂分子的宝贵资源。由于丁醇具有生物毒性,会干扰脂质膜的正常功能,因此利用废料通过微生物生产丁醇受到阻碍。在本研究中,我们对完整的脂质相关酶机制及其对亚致死浓度丁醇暴露的反应进行了大规模研究。我们对116种不同基因构建体在存在和不存在0.5%丁醇(体积分数)的情况下的生长特性和磷脂组进行了三次重复分析。这导致鉴定出230种脂质种类,随后重建了驱动脂质组稳态的代谢物、酶和脂质特性网络。我们能够识别导致丁醇耐受性改变的关键脂质和生化途径。这些数据为细菌脂质代谢带来了新的概念性见解,将对其进行讨论。