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Analysis of the Genes Involved in Thiocyanate Oxidation during Growth in Continuous Culture of the Haloalkaliphilic Sulfur-Oxidizing Bacterium Thioalkalivibrio thiocyanoxidans ARh 2T Using Transcriptomics

机译:使用转录组学的卤偕尔硫 - 氧化硫氧化菌硫齐酮硫氧化物硫胺硫代葡聚糖的连续培养过程中参与硫氰酸盐氧化的基因

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Thiocyanate (N=C?S?) is a moderately toxic, inorganic sulfur compound. It occurs naturally as a by-product of the degradation of glucosinolate-containing plants and is produced industrially in a number of mining processes. Currently, two pathways for the primary degradation of thiocyanate in bacteria are recognized, the carbonyl sulfide pathway and the cyanate pathway, of which only the former has been fully characterized. Use of the cyanate pathway has been shown in only 10 strains of Thioalkalivibrio , a genus of obligately haloalkaliphilic sulfur-oxidizing Gammaproteobacteria found in soda lakes. So far, only the key enzyme in this reaction, thiocyanate dehydrogenase (TcDH), has been purified and studied. To gain a better understanding of the other genes involved in the cyanate pathway, we conducted a transcriptomics experiment comparing gene expression during the growth of Thioalkalivibrio thiocyanoxidans ARh 2T with thiosulfate with that during its growth with thiocyanate. Triplicate cultures were grown in continuous substrate-limited mode, followed by transcriptome sequencing (RNA-Seq) of the total mRNA. Differential expression analysis showed that a cluster of genes surrounding the gene for TcDH were strongly upregulated during growth with thiocyanate. This cluster includes genes for putative copper uptake systems ( copCD , ABC-type transporters), a putative electron acceptor ( fccAB ), and a two-component regulatory system (histidine kinase and a σ54-responsive Fis family transcriptional regulator). Additionally, we observed the increased expression of RuBisCO and some carboxysome shell genes involved in inorganic carbon fixation, as well as of aprAB , genes involved in sulfite oxidation through the reverse sulfidogenesis pathway. IMPORTANCE Thiocyanate is a moderately toxic and chemically stable sulfur compound that is produced by both natural and industrial processes. Despite its significance as a pollutant, knowledge of the microbial degradation of thiocyanate is very limited. Therefore, investigation of thiocyanate oxidation in haloalkaliphiles such as the genus Thioalkalivibrio may lead to improved biotechnological applications in wastewater remediation.
机译:硫氰酸酯(n = C = s βη)是中等毒性的无机硫化合物。它自然地发生作为含硫代葡萄糖苷植物的劣化的副产物,并且在许多采矿过程中在工业上生产。目前,对细菌中硫氰酸胍的一级降解的两种途径被认识到,羰基硫醚途径和氰酸酯途径,其中只有前者已经完全表征。使用氰酸酯途径的使用仅为10个硫珠益粒型菌株,是在苏打湖中发现的难以卤偕尔硫型硫氧化杀菌杀菌菌。到目前为止,只有纯化和研究该反应中的关键酶硫氰酸酯脱氢酶(TCDH)。为了更好地理解参与氰酸酯途径的其他基因,我们进行了转录组族实验,比较基因表达在硫代胺硫代硫酸盐的生长期间与硫代氰酸酯生长期间的硫代硫酸酯。在连续基质限制模式下培养三份培养物,其次是总mRNA的转录组测序(RNA-SEQ)。差异表达分析表明,在用硫氰酸酯生长期间强化了围绕TCDH基因的基因的基因簇。该簇包括用于推定铜吸收系统(COPCD,ABC型转运蛋白)的基因,推定的电子受体(FCCAB)和双组分调节系统(组分激酶和σ 54 -ReSponsive FIS家庭转录调节器)。此外,我们观察到通过反向亚磺酰发生途径参与亚硫酸盐氧化的无机碳固定剂以及APRAb的含量增加的葡萄球菌和一些肉嵌入壳基因的表达增加。重要的硫氰酸酯是一种适度毒性和化学稳定的硫化合物,由天然和工业过程生产。尽管其作为污染物具有重要意义,但了解硫氰酸酯的微生物降解非常有限。因此,卤化物氧化物如噻虫血管属的硫氰酸盐氧化可能导致废水修复中的生物技术应用改善。

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