Genomic analysis and biodesulfurization potential of a new carbon-sulfur bond cleaving Tsukamurella sp. 3OW.

IF 2.3 4区 生物学 Q3 BIOTECHNOLOGY & APPLIED MICROBIOLOGY International Microbiology Pub Date : 2024-10-01 Epub Date: 2024-01-29 DOI:10.1007/s10123-024-00484-z
Javeria Akram, Muhammad Umar Hussain, Asma Aslam, Kalsoom Akhtar, Munir Ahmad Anwar, Mazhar Iqbal, Muhammad Tahir Hussain, Nasrin Akhtar
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Abstract

Direct combustion of sulfur-enriched liquid fuel oil causes sulfur oxide emission, which is one of the main contributors to air pollution. Biodesulfurization is a promising and eco-friendly method to desulfurize a wide range of thiophenic compounds present in fuel oil. Previously, numerous bacterial strains from genera such as Rhodococcus, Corynebacterium, Gordonia, Nocardia, Mycobacterium, Mycolicibacterium, Paenibacillus, Shewanella, Sphingomonas, Halothiobacillus, and Bacillus have been reported to be capable of desulfurizing model thiophenic compounds or fossil fuels. In the present study, we report a new desulfurizing bacterium, Tsukamurella sp. 3OW, capable of desulfurization of dibenzothiophene through the carbon-sulfur bond cleavage 4S pathway. The bacterium showed a high affinity for the hydrocarbon phase and broad substrate specificity towards various thiophenic compounds. The overall genome-related index analysis revealed that the bacterium is closely related to Tsukamurella paurometabola species. The genomic pool of strain 3OW contains 57 genes related to sulfur metabolism, including the key dszABC genes responsible for dibenzothiophene desulfurization. The DBT-adapted cells of the strain 3OW displayed significant resilience and viability in elevated concentrations of crude oil. The bacterium showed a 19 and 37% reduction in the total sulfur present in crude and diesel oil, respectively. Furthermore, FTIR analysis indicates that the oil's overall chemistry remained unaltered following biodesulfurization. This study implies that Tsukamurella paurometabola species, previously undocumented in the context of biodesulfurization, has good potential for application in the biodesulfurization of petroleum oils.

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一种新的碳硫键裂解瘤杆菌 3OW 的基因组分析和生物硫化潜力
直接燃烧富含硫的液体燃料油会导致氧化硫排放,而氧化硫是造成空气污染的主要因素之一。生物脱硫是一种很有前途的环保方法,可用于燃料油中多种噻吩化合物的脱硫。此前,已报道了许多细菌菌株,如 Rhodococcus、Corynebacterium、Gordonia、Nocardia、Mycobacterium、Mycolicibacterium、Paenibacillus、Shewanella、Sphingomonas、Halothiobacillus 和 Bacillus 等菌属,它们能够脱硫模型噻吩化合物或化石燃料。在本研究中,我们报告了一种新的脱硫细菌 Tsukamurella sp. 3OW,它能够通过碳硫键裂解 4S 途径对二苯并噻吩进行脱硫。该细菌对碳氢化合物相具有高亲和力,对各种噻吩化合物具有广泛的底物特异性。整体基因组相关指数分析表明,该细菌与 Tsukamurella paurometabola 物种亲缘关系密切。菌株 3OW 的基因组包含 57 个与硫代谢相关的基因,其中包括负责二苯并噻吩脱硫的关键 dszABC 基因。3OW 菌株的 DBT 适应性细胞在高浓度原油中显示出显著的恢复能力和活力。该细菌在原油和柴油中的总硫含量分别降低了 19% 和 37%。此外,傅立叶变换红外分析表明,在生物脱硫后,原油的整体化学成分保持不变。这项研究表明,Tsukamurella paurometabola 菌种以前在生物脱硫方面没有记录,但在石油的生物脱硫方面具有很好的应用潜力。
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来源期刊
International Microbiology
International Microbiology 生物-生物工程与应用微生物
CiteScore
5.50
自引率
3.20%
发文量
67
审稿时长
3 months
期刊介绍: International Microbiology publishes information on basic and applied microbiology for a worldwide readership. The journal publishes articles and short reviews based on original research, articles about microbiologists and their work and questions related to the history and sociology of this science. Also offered are perspectives, opinion, book reviews and editorials. A distinguishing feature of International Microbiology is its broadening of the term microbiology to include eukaryotic microorganisms.
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