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橄榄油厂废水酚类的生物降解和高产生物氢组合系统。

Combinational system for biodegradation of olive oil mill wastewater phenolics and high yield of bio-hydrogen production.

机构信息

Department of Biology, University of Crete, Voutes University Campus, GR-70013 Heraklion, Crete, Greece.

Department of Biology, University of Crete, Voutes University Campus, GR-70013 Heraklion, Crete, Greece.

出版信息

J Biotechnol. 2019 Dec 20;306:47-53. doi: 10.1016/j.jbiotec.2019.09.009. Epub 2019 Sep 18.

Abstract

Olive oil mill wastewater (OMW) is a significant pollutant in the Mediterranean region. In the present contribution, we showed clearly that microorganisms (microalgae and OMW-microflora) activated the biodegradation of OMW-phenolics and produced a high yield of hydrogen (H). In a closed incubation system, the appropriate adjustment of OMW-pH leads to the establishment of anoxic conditions through the oxygen consumption of microorganisms during the first incubation day. The biodegradation procedure of OMW-phenolics needs oxygen. Therefore, after the establishment of anoxic conditions, the biodegradation stopped and the activation of hydrogenases started, leading to a continuous high yield of bio-hydrogen production. If the cultivation system re-opened (oxygen enrichment), the OMW-phenolic biodegradation (oxygen dependent process) started again and therefore the detoxified OMW could be used for further biotechnological applications (production of biodiesel, bioalcohols, organic fertilizers, etc.). Apart from the environmental compatibility of the method and the sustainability of such a combinational application (OMW detoxification and high yield of hydrogen production) in the context of a green biotechnology approach, the cost/profit ratio appears to be particularly tempting and guarantees its widespread use in the near future. The present contribution proposes a solution to a major environmental problem by upgrading its solution to a high-value product.

摘要

橄榄油厂废水(OMW)是地中海地区的主要污染物。在本研究中,我们清楚地表明,微生物(微藻和 OMW-微生物群)激活了 OMW-酚类的生物降解,并产生了高产量的氢气(H)。在封闭的孵育系统中,通过微生物在第一天孵育期间的耗氧作用,适当调节 OMW-pH 值可导致缺氧条件的建立。OMW-酚类的生物降解过程需要氧气。因此,在建立缺氧条件后,生物降解停止,氢化酶的激活开始,导致连续产生高产量的生物氢气。如果重新打开培养系统(富氧),则开始进行 OMW-酚类生物降解(依赖于氧气的过程),因此可以使用经解毒的 OMW 进行进一步的生物技术应用(生产生物柴油、生物醇、有机肥料等)。除了该方法的环境相容性和这种组合应用(OMW 解毒和高产量的氢气生产)在绿色生物技术方法中的可持续性之外,成本/利润比似乎特别诱人,并保证其在不久的将来得到广泛应用。本研究通过将其解决方案升级为高价值产品,为解决主要环境问题提供了一种解决方案。

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