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首页> 外文期刊>Bioprocess and Biosystems Engineering >Hydrolyzed polyacrylamide biotransformation in an up-flow anaerobic sludge blanket reactor system: key enzymes, functional microorganisms, and biodegradation mechanisms
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Hydrolyzed polyacrylamide biotransformation in an up-flow anaerobic sludge blanket reactor system: key enzymes, functional microorganisms, and biodegradation mechanisms

机译:在上流厌氧污泥毯反应器系统中水解的聚丙烯酰胺生物转化料:关键酶,功能性微生物和生物降解机制

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摘要

Hydrolyzed polyacrylamide (HPAM) biotransformation in an up-flow anaerobic sludge blanket reactor including biodegradation performances, biodegradation mechanisms, key enzymes, and functional microorganisms was explored. Response surface methodology was applied to further improve HPAM degradation. The predicted degradation ratios of HPAM and CODCr were 46.2% and 83.4% under the optimal conditions. HPAM biodegradation ratio and total organic carbon removal ratio reached 40.5% and 38.9%. Total nitrogen concentration was dramatically decreased with the increasing fermentation time during the fermentation, while low ammonia nitrogen (NH4+-N) and nitrite nitrogen (NO2--N) were generated. NH4+-N and NO2--N increased slightly on the whole. Enzyme activity change was correlated with HPAM biodegradation. Dehydrogenase activity had a decline of 21.3-41.0%, and the minimum value occurred at 300mg/L of HPAM. Urease activity was varied from 28.7 to 78.7% and the maximal inhibition ratio occurred at 200mg/L of HPAM. Mechanisms for the biodegradation of HPAM were also explored by FT-IR, HPLC, and SEM. The results indicated that long-chain HPAM was broken into micromolecule compounds and the amide groups of HPAM were transformed into carboxyl groups. Based on the sequencing results on an Illumina MiSeq platform, Proteobacterias, Bacteroidetes, and Chloroflexi were turned out to be the critical microorganisms involved in HPAM degradation. This work lays a basis for HPAM-containing wastewater treatment and offers a support for water saving and emission reduction. It is of great significance to the sustainable development of oilfield.
机译:探讨了在隆起的厌氧污泥橡胶反应器中的水解聚丙烯酰胺(HPAM)生物转移,包括生物降解性能,生物降解机制,关键酶和功能性微生物。应用响应表面方法,以进一步提高HPAM劣化。在最佳条件下,HPAM和CODCR的预测降解比例为46.2%和83.4%。 HPAM生物降解率和总有机碳去除率达到40.5%和38.9%。随着发酵过程中的发酵时间的增加,总氮浓度显着降低,而产生低氨氮(NH4 + -N)和亚硝酸亚硝酸氮(NO 2 -N)。 NH4 + -N和NO2 - N略有增加。酶活性变化与HPAM生物降解相关。脱氢酶活性的下降21.3-41.0%,最小值在300mg / L的HPAM中发生。尿素活性从28.7%变化到78.7%,最大抑制率在200mg / L的HPAM中发生。还通过FT-IR,HPLC和SEM探索了HPAM生物降解的机制。结果表明,将长链HPAM分解成微量分子化合物,将酰胺基团的HPAM转化成羧基。基于Illumina MiSeq平台的测序结果,原始植物,菌株和氯吡啉和氯倍曲面被证明是HPAM降解中涉及的关键微生物。这项工作为含HPAM的废水处理奠定了基础,并提供了节水和减排的支持。对油田的可持续发展具有重要意义。

著录项

  • 来源
    《Bioprocess and Biosystems Engineering》 |2019年第6期|941-951|共11页
  • 作者单位

    Ocean Univ China Key Lab Marine Chem Theory & Technol Minist Educ Inst Adv Ocean Study Qingdao 266100 Shandong Peoples R China|Ocean Univ China Coll Chem & Chem Engn Qingdao 266100 Shandong Peoples R China;

    Ocean Univ China Key Lab Marine Chem Theory & Technol Minist Educ Inst Adv Ocean Study Qingdao 266100 Shandong Peoples R China|Ocean Univ China Coll Chem & Chem Engn Qingdao 266100 Shandong Peoples R China;

    Ocean Univ China Key Lab Marine Chem Theory & Technol Minist Educ Inst Adv Ocean Study Qingdao 266100 Shandong Peoples R China|Ocean Univ China Coll Chem & Chem Engn Qingdao 266100 Shandong Peoples R China|Qingdao Univ Sci & Technol Dept Chem Engn Gaomi Campus Qingdao 261500 Shandong Peoples R China;

    Ocean Univ China Key Lab Marine Chem Theory & Technol Minist Educ Inst Adv Ocean Study Qingdao 266100 Shandong Peoples R China|Ocean Univ China Coll Chem & Chem Engn Qingdao 266100 Shandong Peoples R China;

    Ocean Univ China Coll Chem & Chem Engn Qingdao 266100 Shandong Peoples R China;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    Hydrolyzed polyacrylamide; Up-flow anaerobic sludge blanket; Biodegradation mechanisms; Enzyme activities; Key microorganisms;

    机译:水解聚丙烯酰胺;上流厌氧污泥毯;生物降解机制;酶活性;关键微生物;

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