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苏云金芽孢杆菌降解双酚 A 的代谢及蛋白质组学机制。

Metabolic and proteomic mechanism of bisphenol A degradation by Bacillus thuringiensis.

机构信息

School of Environment, Guangdong Key Laboratory of Environmental Pollution and Health, Jinan University, Guangzhou 510632, Guangdong, China.

College of Biology and Food Engineering, Guangdong University of Education, Guangzhou 510303, Guangdong, China.

出版信息

Sci Total Environ. 2018 Nov 1;640-641:714-725. doi: 10.1016/j.scitotenv.2018.05.352. Epub 2018 Jun 5.

DOI:10.1016/j.scitotenv.2018.05.352
PMID:29879660
Abstract

Bisphenol A (BPA) is a worldwide, widespread pollutant with estrogen mimicking and hormone-like properties. To date, some target biomolecules associated with BPA toxicity have been confirmed. The limited information has not clarified the related metabolism at the pathway and network levels. To this end, metabolic and proteomic approaches were performed to reveal the synthesis of phospholipids and proteins and the metabolic network during the BPA degradation process. The results showed that the degradation efficiency of 1 μM of BPA by 1 g L of Bacillus thuringiensis was up to 85% after 24 h. During this process, BPA significantly changed the membrane permeability; altered sporulation, amino acid and protein expression, and carbon, purine, pyrimidine and fatty acid metabolism; enhanced C14:0, C16:1ω7, C18:2ω6, C18:1ω9t and C18:0 synthesis; and increased the trans/cis ratio of C18:1ω9t/C18:1ω9c. It also depressed the spore DNA stability of B. thuringiensis. Among the 14 upregulated and 7 down-regulated proteins, SasP-1 could be a biomarker to reflect BPA-triggered spore DNA impairment. TpiA, RpoA, GlnA and InfA could be phosphorylated at the active sites of serine and tyrosine. The findings presented novel insights into the interaction among BPA stress, BPA degradation, phospholipid synthesis and protein expression at the network and phylogenetic levels.

摘要

双酚 A(BPA)是一种具有雌激素模拟和激素样特性的全球性、广泛存在的污染物。迄今为止,已经确认了一些与 BPA 毒性相关的靶标生物分子。有限的信息尚未阐明相关的代谢途径和网络水平。为此,采用代谢组学和蛋白质组学方法揭示了 BPA 降解过程中磷脂和蛋白质的合成以及代谢网络。结果表明,1g/L 苏云金芽孢杆菌在 24h 内可将 1µM 的 BPA 降解至 85%。在此过程中,BPA 显著改变了膜通透性;改变了芽孢形成、氨基酸和蛋白质表达以及碳、嘌呤、嘧啶和脂肪酸代谢;增强了 C14:0、C16:1ω7、C18:2ω6、C18:1ω9t 和 C18:0 的合成;增加了 C18:1ω9t/C18:1ω9c 的顺式/反式比值。它还抑制了苏云金芽孢杆菌孢子 DNA 的稳定性。在 14 个上调蛋白和 7 个下调蛋白中,SasP-1 可以作为反映 BPA 引起的孢子 DNA 损伤的生物标志物。TpiA、RpoA、GlnA 和 InfA 可以在丝氨酸和酪氨酸的活性位点磷酸化。这些发现为 BPA 胁迫、BPA 降解、磷脂合成和蛋白质表达在网络和系统发育水平上的相互作用提供了新的见解。

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