Cyanidiales-Based Bioremediation of Heavy Metals.

IF 2.7 Q3 BIOTECHNOLOGY & APPLIED MICROBIOLOGY
BioTech Pub Date : 2023-04-18 DOI:10.3390/biotech12020029
Hari Lal Kharel, Ina Shrestha, Melissa Tan, Mohammad Nikookar, Negar Saraei, Thinesh Selvaratnam
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Abstract

With growing urbanization and ongoing development activities, the consumption of heavy metals has been increasing globally. Although heavy metals are vital for the survival of living beings, they can become hazardous when they surpass the permissible limit. The effect of heavy metals varies from normal to acute depending on the individual, so it is necessary to treat the heavy metals before releasing them into the environment. Various conventional treatment technologies have been used based on physical, chemical, and biological methods. However, due to technical and economic constraints and poor sustainability towards the environment, the use of these technologies has been limited. Microalgal-based heavy metal removal has been explored for the past few decades and has been seen as an effective, environment-friendly, and inexpensive method compared to conventional treatment technology. Cyanidiales that belong to red algae have the potential for remediation of heavy metals as they can withstand and tolerate extreme stresses of heat, acid salts, and heavy metals. Cyanidiales are the only photosynthetic organisms that can survive and thrive in acidic mine drainage, where heavy metal contamination is often prevalent. This review focuses on the algal species belonging to three genera of Cyanidiales: Cyanidioschyzon, Cyanidium, and Galdieria. Papers published after 2015 were considered in order to examine these species' efficiency in heavy metal removal. The result is summarized as maximum removal efficiency at the optimum experimental conditions and based on the parameters affecting the metal ion removal efficiency. This study finds that pH, initial metal concentration, initial algal biomass concentration, algal strains, and growth temperature are the major parameters that affect the heavy metal removal efficiency of Cyanidiales.

基于蓝藻的重金属生物修复。
随着城市化的不断发展和持续的开发活动,重金属的消耗量在全球范围内不断增加。虽然重金属对生物的生存至关重要,但当其含量超过允许限度时,就会对人体造成危害。重金属的影响因人而异,有的属于正常影响,有的则属于急性影响,因此有必要在将重金属排放到环境中之前对其进行处理。基于物理、化学和生物方法,人们已经使用了各种传统的处理技术。然而,由于技术和经济方面的限制以及对环境的可持续性较差,这些技术的使用受到了限制。与传统处理技术相比,基于微藻的重金属去除技术是一种有效、环保且成本低廉的方法。属于红藻的蓝藻具有修复重金属的潜力,因为它们能承受和耐受高温、酸碱盐和重金属等极端压力。蓝藻是唯一能在酸性矿井排水中生存和生长的光合生物,而重金属污染在酸性矿井排水中非常普遍。本综述主要介绍属于藻类植物中三个属的藻类物种:Cyanidioschyzon、Cyanidium 和 Galdieria。研究考虑了 2015 年之后发表的论文,以考察这些物种去除重金属的效率。结果总结为在最佳实验条件下的最大去除效率,并基于影响金属离子去除效率的参数。本研究发现,pH 值、初始金属浓度、初始藻类生物量浓度、藻类菌株和生长温度是影响蓝藻重金属去除效率的主要参数。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
BioTech
BioTech Immunology and Microbiology-Applied Microbiology and Biotechnology
CiteScore
3.70
自引率
0.00%
发文量
51
审稿时长
11 weeks
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