College of Resources and Environment, University of Chinese Academy of Sciences, 19 A Yuquan Road, Beijing, 100049, China; Institute of Microbiology, Faculty of Natural Science, Shah Abdul Latif University, Khairpur Mir's, 66020, Sindh, Pakistan.
College of Resources and Environment, University of Chinese Academy of Sciences, 19 A Yuquan Road, Beijing, 100049, China; RCEES-IMCAS-UCAS Joint-Lab of Microbial Technology for Environmental Science, Beijing, 100085, China.
Chemosphere. 2023 Jan;311(Pt 1):136979. doi: 10.1016/j.chemosphere.2022.136979. Epub 2022 Oct 26.
Currently, researchers have focused on electrokinetic (EK) bioremediation due to its potential to remove a wide-range of pollutants. Further, to improve their performance, synthetic surfactants are employed as effective additives because of their excellent solubility and mobility. Synthetic surfactants have an excessive position in industries since they are well-established, cheap, and easily available. Nevertheless, these surfactants have adverse environmental effects and could be detrimental to aquatic and terrestrial life. Owing to social and environmental awareness, there is a rising demand for bio-based surfactants in the global market, from environmental sustainability to public health, because of their excellent surface and interfacial activity, higher and stable emulsifying property, biodegradability, non- or low toxicity, better selectivity and specificity at extreme environmental conditions. Unfortunately, challenges to biosurfactants, like expensive raw materials, low yields, and purification processes, hinder their applicability to large-scale. To date, extensive research has already been conducted for production scale-up using multidisciplinary approaches. However, it is still essential to research and develop high-yielding bacteria for bioproduction through traditional and biotechnological advances to reduce production costs. Herein, this review evaluates the recent progress made on microbial-surfactants for bioproduction scale-up and provides detailed information on traditional and advanced genetic engineering approaches for cost-effective bioproduction. Furthermore, this study emphasized the role of electrokinetic (EK) bioremediation and discussed the application of BioS-mediated EK for various pollutants remediation.
目前,研究人员专注于电动(EK)生物修复,因为它具有去除广泛污染物的潜力。此外,为了提高其性能,合成表面活性剂被用作有效的添加剂,因为它们具有出色的溶解性和流动性。合成表面活性剂在工业中占有重要地位,因为它们已经确立、便宜且易于获得。然而,这些表面活性剂对环境有不利影响,可能对水生和陆地生物有害。由于社会和环境意识的提高,全球市场对生物基表面活性剂的需求不断增加,从环境可持续性到公共健康,因为它们具有出色的表面和界面活性、更高和更稳定的乳化性能、生物降解性、非毒性或低毒性、在极端环境条件下更好的选择性和特异性。不幸的是,生物表面活性剂存在一些挑战,如昂贵的原材料、低产量和纯化工艺,这限制了它们在大规模应用中的适用性。迄今为止,已经通过多学科方法进行了广泛的研究,以扩大生产规模。然而,通过传统和生物技术的进步,研究和开发高产细菌以降低生产成本对于生物生产仍然至关重要。本文评价了微生物表面活性剂在生物生产扩大规模方面的最新进展,并详细介绍了传统和先进的遗传工程方法在经济高效的生物生产中的应用。此外,本研究强调了电动(EK)生物修复的作用,并讨论了生物介导的 EK 在各种污染物修复中的应用。