影响蓝藻聚(3-羟基丁酸酯)积累的化学物质:2-苯乙醇处理联合氮剥夺协同增强聚囊藻sp. PCC6803和Anabaena sp. TISTR8076的聚(3-羟基丁酸酯)储存

Nannaphat Sukkasam, Aran Incharoensakdi, Tanakarn Monshupanee
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引用次数: 3

摘要

各种光自养蓝藻在氮剥夺(-N)条件下增加生物塑料聚(3-羟基丁酸酯)(PHB)的积累,以储存能量。几种代谢工程增强了蓝藻PHB的积累,但这些策略不适用于非基因转化菌株。另外,通过化学暴露刺激PHB水平是可取的,因为它可能适用于各种蓝藻菌株。然而,对这类化学物质的研究仍然有限。在这里,19种先前报道的影响细菌细胞过程的化合物被评估了它们对聚囊藻sp. PCC6803中PHB积累的影响,其中3-(3,4-二氯苯基)-1,1-二甲基脲、甲基紫藻、亚砷酸盐、苯氧乙醇和2-苯乙醇被发现会增加PHB的积累。在最佳硝态氮条件下,藻藻PHB含量低于0.5% [w/w干重(DW)],而在-N条件下,藻藻PHB含量可达7% (w/w DW)。有趣的是,-N培养与2-苯乙醇暴露相结合,使聚囊藻的蛋白质含量降低了27% (w/w DW),但显著增加了PHB水平,达到33% (w/w DW),这是迄今为止报道的野生型菌株中光自养蓝藻PHB积累的最高水平。转录组学和代谢组学分析结果表明,在2-苯乙醇处理下,聚囊藻蛋白质被降解为氨基酸,这些氨基酸可能随后被用作PHB生物合成的碳和能量来源。2-苯乙醇处理也增加了聚囊藻合成PHB所需的代谢物水平(乙酰辅酶a、乙酰乙酰辅酶a、3-羟基丁基辅酶a和NADPH)。此外,在-N条件下,暴露于苯氧乙醇和2-苯乙醇使水藻的PHB水平分别从0.4%增加到4.1%和6.6% (w/w DW)。本研究中发现的化学物质可能适用于促进PHB在其他蓝藻中的积累。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Chemicals Affecting Cyanobacterial Poly(3-hydroxybutyrate) Accumulation: 2-Phenylethanol Treatment Combined with Nitrogen Deprivation Synergistically Enhanced Poly(3-hydroxybutyrate) Storage in Synechocystis sp. PCC6803 and Anabaena sp. TISTR8076.

Various photoautotrophic cyanobacteria increase the accumulation of bioplastic poly(3-hydroxybutyrate) (PHB) under nitrogen deprivation (-N) for energy storage. Several metabolic engineering enhanced cyanobacterial PHB accumulation, but these strategies are not applicable in non-gene-transformable strains. Alternatively, stimulating PHB levels by chemical exposure is desirable because it might be applied to various cyanobacterial strains. However, the study of such chemicals is still limited. Here, 19 compounds previously reported to affect bacterial cellular processes were evaluated for their effect on PHB accumulation in Synechocystis sp. PCC6803, where 3-(3,4-dichlorophenyl)-1,1-dimethylurea, methyl viologen, arsenite, phenoxyethanol and 2-phenylethanol were found to increase PHB accumulation. When cultivated with optimal nitrate supply, Synechocystis contained less than 0.5% [w/w dry weight (DW)] PHB, while cultivation under -N conditions increased the PHB content to 7% (w/w DW). Interestingly, the -N cultivation combined with 2-phenylethanol exposure reduced the Synechocystis protein content by 27% (w/w DW) but significantly increased PHB levels up to 33% (w/w DW), the highest ever reported photoautotrophic cyanobacterial PHB accumulation in a wild-type strain. Results from transcriptomic and metabolomic analysis suggested that under 2-phenylethanol treatment, Synechocystis proteins were degraded to amino acids, which might be subsequently utilized as the source of carbon and energy for PHB biosynthesis. 2-Phenylethanol treatment also increased the levels of metabolites required for Synechocystis PHB synthesis (acetyl-CoA, acetoacetyl-CoA, 3-hydroxybutyryl-CoA and NADPH). Additionally, under -N, the exposure to phenoxyethanol and 2-phenylethanol increased the PHB levels of Anabaena sp. from 0.4% to 4.1% and 6.6% (w/w DW), respectively. The chemicals identified in this study might be applicable for enhancing PHB accumulation in other cyanobacteria.

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