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超声预氧化强化模型化合物生物脱硫的研究

Investigations in enhancement biodesulfurization of model compounds by ultrasound pre-oxidation.

作者信息

Yi Zhigang, Ma Xuguang, Song Jiuhua, Yang Xiaorong, Tang Qiong

机构信息

Department of Chemistry, Leshan Normal University, Leshan 614004, PR China.

Department of Chemistry, Leshan Normal University, Leshan 614004, PR China.

出版信息

Ultrason Sonochem. 2019 Jun;54:110-120. doi: 10.1016/j.ultsonch.2019.02.009. Epub 2019 Feb 12.

Abstract

In this study, complicated model sulfur compounds in crude oil were biodesulfurized in a batch process by microbial consortium enriched from oil contaminated soil. Dibenzothiophene (DBT) was selected as model sulfur compounds. Ultrasonic radiation was used to pre-oxidize the model sulfur compounds before the biodesulfurization (BDS) process. The enhancement mechanism of ultrasound pre-oxidation (UPO) on the biodesulfurization of DBT was investigated. The effects of initial conditions on the biodesulfurization of DBT in UPO/BDS system such as solution initial pH, DBT initial concentration, sulfur source, biocatalyst initial concentration, and incubation temperature were discussed. The results show that the application of UPO before BDS procedure significantly improved the efficiency of the biodesulfurization and allowed sulfur removal in shorter time through oxidizing DBT to DBT sulfone, resulting in shortening the "4S" pathway for biodesulfurization from 4 steps to 2 steps, enhancement in reaction velocity and enzyme-substrate affinity as well as reduction in substrate inhibition. The concentration of 2-HBP increased fast with the use of ultrasound pre-oxidation, which was dependent on solution initial pH, DBT initial concentration, sulfur source, biocatalyst initial concentration, and incubation temperature.

摘要

在本研究中,采用从石油污染土壤中富集的微生物群落,以分批处理的方式对原油中的复杂模型含硫化合物进行生物脱硫。选择二苯并噻吩(DBT)作为模型含硫化合物。在生物脱硫(BDS)过程之前,使用超声辐射对模型含硫化合物进行预氧化。研究了超声预氧化(UPO)对DBT生物脱硫的增强机制。讨论了初始条件对UPO/BDS体系中DBT生物脱硫的影响,如溶液初始pH值、DBT初始浓度、硫源、生物催化剂初始浓度和培养温度。结果表明,在BDS程序之前应用UPO显著提高了生物脱硫效率,并通过将DBT氧化为DBT砜,使硫在更短的时间内去除,从而将生物脱硫的“4S”途径从4步缩短为2步,提高了反应速度和酶-底物亲和力,并降低了底物抑制。随着超声预氧化的使用,2-HBP的浓度迅速增加,这取决于溶液初始pH值、DBT初始浓度、硫源、生物催化剂初始浓度和培养温度。

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