Microbial interactions with uranium: Towards an effective bioremediation approach

被引:70
作者
Banala, Uday Kumar [1 ,2 ]
Das, Nilamadhab Prasad Indradyumna [1 ]
Toleti, Subba Rao [2 ,3 ]
机构
[1] Indira Gandhi Ctr Atom Res, Radiol & Environm Safety Div, Kalpakkam 603102, Tamil Nadu, India
[2] Homi Bhabha Natl Inst, Mumbai 400094, Maharashtra, India
[3] Bhabha Atom Res Ctr, Chem Grp, Water & Steam Chem Div, Kalpakkam 603102, Tamil Nadu, India
关键词
Uranium; Biosorption; Bioprecipitation; Bioreduction; Bioaccumulation; Chemical methods;
D O I
10.1016/j.eti.2020.101254
中图分类号
Q81 [生物工程学(生物技术)]; Q93 [微生物学];
学科分类号
071005 ; 0836 ; 090102 ; 100705 ;
摘要
In uranium bioremediation, the response of different biological groups towards uranium are critical. Understanding the metal-microbe interactions would provide adequate knowledge to develop the remediation technique. Owing to this application, many studies have been reported on various strategies using different microbial agents. These microorganisms can adsorb, accumulate, reduce, or mineralize uranium as a survival mechanism. This review is intended to discuss the plausible uranium-microbial interactions that could sequester and limit the uranium contamination in the environment. A detailed description of the key processes such as biosorption, biomineralization, bioreduction and bioaccumulation of uranium by various biological groups are provided in this review. Concise information about the uranium speciation and other environmental factors which can substantially influence the in situ bioremediation are also discussed. Finally, a comparative assessment of chemical methods versus biological procedures in the remediation of uranium was explained. This review brings out the importance of the various biological agents and factors associated with the bioremediation of uranium contaminated sites. (C) 2020 Elsevier B.V. All rights reserved.
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页数:17
相关论文
共 203 条
[1]   Biological reduction of uranium in groundwater and subsurface soil [J].
Abdelouas, A ;
Lutze, W ;
Gong, WL ;
Nuttall, EH ;
Strietelmeier, BA ;
Travis, BJ .
SCIENCE OF THE TOTAL ENVIRONMENT, 2000, 250 (1-3) :21-35
[2]   Investigation of uranium (VI) adsorption by polypyrrole [J].
Abdi, S. ;
Nasiri, M. ;
Mesbahi, A. ;
Khani, M. H. .
JOURNAL OF HAZARDOUS MATERIALS, 2017, 332 :132-139
[3]   Uranium sequestration by a marine cyanobacterium, Synechococcus elongatus strain BDU/75042 [J].
Acharya, C. ;
Joseph, D. ;
Apte, S. K. .
BIORESOURCE TECHNOLOGY, 2009, 100 (07) :2176-2181
[4]   Interaction of uranium with a filamentous, heterocystous, nitrogen-fixing cyanobacterium, Anabaena torulosa [J].
Acharya, C. ;
Chandwadkar, P. ;
Apte, S. K. .
BIORESOURCE TECHNOLOGY, 2012, 116 :290-294
[5]  
Acharya C., 2015, URANIUM BIOREMEDIATI, DOI [10.1007/978-3-319-19018-1_7, DOI 10.1007/978-3-319-19018-1_7]
[6]   Novel surface associated polyphosphate bodies sequester uranium in the filamentous, marine cyanobacterium, Anabaena torulosa [J].
Acharya, Celin ;
Apte, Shree Kumar .
METALLOMICS, 2013, 5 (12) :1595-1598
[7]   Insights into the interactions of cyanobacteria with uranium [J].
Acharya, Celin ;
Apte, Shree Kumar .
PHOTOSYNTHESIS RESEARCH, 2013, 118 (1-2) :83-94
[8]   Potentiality of uranium biosorption from nitric acid solutions using shrimp shells [J].
Ahmed, S. H. ;
El Sheikh, E. M. ;
Morsy, A. M. A. .
JOURNAL OF ENVIRONMENTAL RADIOACTIVITY, 2014, 134 :120-127
[9]   Removal and recovery of uranium from aqueous solutions by Ca-alginate immobilized Trichoderma harzianum [J].
Akhtar, K. ;
Khalid, A. M. ;
Akhtar, M. W. ;
Ghauri, M. A. .
BIORESOURCE TECHNOLOGY, 2009, 100 (20) :4551-4558
[10]  
Akob D.M., 2012, FRONT MICROBIOL