In Vitro Evaluation of Bio Reduction of Hexavalent Chrome by Marine Microorganisms Isolated in the Cartagena Bay for Wastewater Treatment

Q3 Chemical Engineering Chemical engineering transactions Pub Date : 2021-06-15 DOI:10.3303/CET2186110
G. Echeverri, Laura Ramírez, Jordan Saez, A. Escorcia
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Abstract

Contamination problems by heavy metals and specifically by hexavalent chromium generated by different production processes impact aquifers worldwide and require effective remediation methods for their control. The exploration of microorganisms in saline environments with the capacity to bio reduce hexavalent chromium (????6+) to trivalent chromium (????3+), allows an alternative to the use of biotechnological processes, reducing its toxicity. In the present study, marine microorganisms were isolated from water and sediments, adapted to high concentrations of hexavalent chromium, from 300ppm to 1000ppm with bio reductive potential in wastewater. Bio reduction bioassays were carried out in selective liquid and solid culture media, to which potassium dichromate (K2Cr2O7) was added. Morphological and biochemical identification was carried out with API, preserving colonies. Spectrophotometric validation was developed to evaluate (???? 6+), verifying the bio reduction efficiency in laboratory bioassays with King broth and 300 ppm of potassium dichromate. The different broths were evaluated for enrichment, being the nutritive broth and King the best, showing high turbidity and growth in a short time. Among bacteria isolated from water and sediment, the latter showed rapid growth from 18 to 24 h. Gram positive and negative bacilli (Bacillus subtilis, Bacillus brevis, Bacillus megaterium, Escherichia coli and Citrobacter kosseri) were found at 500/1000 ppm and biochemically characterized. Bio reduction percentages greater than 91% were obtained at 96 h, in concentrations of 300ppm of hexavalent chromium. Thanks to the selective isolation, tolerance and resistance to hexavalent chromium, these microorganisms proved to be bio reductive of this metal. Therefore, the use of these microorganisms on a full scale can be considered as a result for wastewater treatment where hexavalent chromium is used. Likewise, the use of microorganisms used in the bio reduction process is an alternative to Environmental Microbial Biotechnology that will bring benefits by reducing contamination.
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卡塔赫纳湾分离的海洋微生物对废水处理中六价铬的生物还原的体外评价
重金属污染问题,特别是不同生产过程产生的六价铬污染问题,影响着世界各地的含水层,需要有效的修复方法来控制。探索盐碱环境中具有将六价铬(????6+)生物还原为三价铬(????3+)能力的微生物,可以替代使用生物技术过程,降低其毒性。在本研究中,从水和沉积物中分离出海洋微生物,这些微生物适应高浓度六价铬,从300ppm到1000ppm,在废水中具有生物还原潜力。在添加重铬酸钾(K2Cr2O7)的选择性液体和固体培养基中进行生物还原生物测定。用API进行形态和生化鉴定,保存菌落。建立了分光光度法验证(????)6+),用King肉汤和300 ppm重铬酸钾在实验室生物测定中验证生物还原效率。对不同发酵液进行富集评价,以营养发酵液和King发酵液为最佳,浊度高,生长时间短。从水和沉积物中分离的细菌中,后者在18 ~ 24 h内生长迅速。革兰氏阳性和阴性杆菌(枯草芽孢杆菌、短芽孢杆菌、巨芽孢杆菌、大肠杆菌和克塞利柠檬酸杆菌)在500/1000 ppm条件下均有发现,并进行了生化鉴定。当六价铬浓度为300ppm时,96 h生物还原率大于91%。由于选择性分离,对六价铬的耐受性和抗性,这些微生物被证明是这种金属的生物还原性。因此,可以考虑在使用六价铬的废水处理中全面使用这些微生物。同样,在生物还原过程中使用微生物是环境微生物生物技术的一种替代方法,它将通过减少污染而带来好处。
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来源期刊
Chemical engineering transactions
Chemical engineering transactions Chemical Engineering-Chemical Engineering (all)
CiteScore
1.40
自引率
0.00%
发文量
0
审稿时长
6 weeks
期刊介绍: Chemical Engineering Transactions (CET) aims to be a leading international journal for publication of original research and review articles in chemical, process, and environmental engineering. CET begin in 2002 as a vehicle for publication of high-quality papers in chemical engineering, connected with leading international conferences. In 2014, CET opened a new era as an internationally-recognised journal. Articles containing original research results, covering any aspect from molecular phenomena through to industrial case studies and design, with a strong influence of chemical engineering methodologies and ethos are particularly welcome. We encourage state-of-the-art contributions relating to the future of industrial processing, sustainable design, as well as transdisciplinary research that goes beyond the conventional bounds of chemical engineering. Short reviews on hot topics, emerging technologies, and other areas of high interest should highlight unsolved challenges and provide clear directions for future research. The journal publishes periodically with approximately 6 volumes per year. Core topic areas: -Batch processing- Biotechnology- Circular economy and integration- Environmental engineering- Fluid flow and fluid mechanics- Green materials and processing- Heat and mass transfer- Innovation engineering- Life cycle analysis and optimisation- Modelling and simulation- Operations and supply chain management- Particle technology- Process dynamics, flexibility, and control- Process integration and design- Process intensification and optimisation- Process safety- Product development- Reaction engineering- Renewable energy- Separation processes- Smart industry, city, and agriculture- Sustainability- Systems engineering- Thermodynamic- Waste minimisation, processing and management- Water and wastewater engineering
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