IN SITU AND EX SITU BIOREMEDIATION OF HEAVY METALS: THE PRESENT SCENARIO

被引:10
作者
Paul, Oindrila [1 ]
Jasu, Amrita [1 ]
Lahiri, Dibyajit [2 ]
Nag, Moupriya [2 ]
Ray, Rina Rani [1 ]
机构
[1] Maulana Abul Kalam Azad Univ Technol, Dept Biotechnol, Haringhata, W Bengal, India
[2] Univ Engn & Management, Dept Biotechnol, Kolkata, W Bengal, India
关键词
bioremediation; in situ" and "ex situ" bioremediation; bioattenuation; heavy metals; PERMEABLE REACTIVE BARRIER; PLANT-GROWTH; CONTAMINATED SOILS; WASTE-WATER; NATURAL ATTENUATION; REMEDIATION TRIALS; BACILLUS-CEREUS; DIESEL OIL; GROUNDWATER; REMOVAL;
D O I
10.3846/jeelm.2021.15447
中图分类号
X [环境科学、安全科学];
学科分类号
08 ; 0830 ;
摘要
Enhanced population growth, rapid industrialization, urbanization and hazardous industrial practices have resulted in the development of environmental pollution in the past few decades. Heavy metals are one of those pollutants that are related to environmental and public health concerns based on their toxicity. Effective bioremediation may be accomplished through "ex situ" and "in situ" processes, based on the type and concentration of pollutants, characteristics of the site but is not limited to cost. The recent developments in artificial neural network and microbial gene editing help to improve "in situ" bioremediation of heavy metals from the polluted sites. Multi-omics approaches are adopted for the effective removal of heavy metals by various indigenous microbes. This overview introspects two major bioremediation techniques, their principles, limitations and advantages, and the new aspects of nanobiotechnology, computational biology and DNA technology to improve the scenario.
引用
收藏
页码:454 / 469
页数:16
相关论文
共 144 条
[51]   The role of glomalin, a protein produced by arbuscular mycorrhizal fungi, in sequestering potentially toxic elements [J].
González-Chávez, MC ;
Carrillo-González, R ;
Wright, SF ;
Nichols, KA .
ENVIRONMENTAL POLLUTION, 2004, 130 (03) :317-323
[52]   Bioremediation of heavy metals by growing hyperaccumulaor endophytic bacterium Bacillus sp L14 [J].
Guo, Hanjun ;
Luo, Shenglian ;
Chen, Liang ;
Xiao, Xiao ;
Xi, Qiang ;
Wei, Wanzhi ;
Zeng, Guangming ;
Liu, Chengbin ;
Wan, Yong ;
Chen, Jueliang ;
He, Yejuan .
BIORESOURCE TECHNOLOGY, 2010, 101 (22) :8599-8605
[53]   Application of neural network model for the prediction of chromium concentration in phytoremediated contaminated soils [J].
Hattab, Nour ;
Hambli, Ridha ;
Motelica-Heino, Mikael ;
Bourrat, Xavier ;
Mench, Michel .
JOURNAL OF GEOCHEMICAL EXPLORATION, 2013, 128 :25-34
[54]   Permeability of iron sulfide (FeS)-based materials for groundwater remediation [J].
Henderson, Andrew D. ;
Demond, Avery H. .
WATER RESEARCH, 2013, 47 (03) :1267-1276
[55]   Arbuscular mycorrhiza and heavy metal tolerance [J].
Hildebrandt, Ulrich ;
Regvar, Marjana ;
Bothe, Hermann .
PHYTOCHEMISTRY, 2007, 68 (01) :139-146
[56]   CH4 and N2O from mechanically turned windrow and vermicomposting systems following in-vessel pre-treatment [J].
Hobson, AM ;
Frederickson, J ;
Dise, NB .
WASTE MANAGEMENT, 2005, 25 (04) :345-352
[57]   In situ vadose zone bioremediation [J].
Hoehener, Patrick ;
Ponsin, Violaine .
CURRENT OPINION IN BIOTECHNOLOGY, 2014, 27 :1-7
[58]   Incidence and impact of axial malformations in larval bullfrogs (Rana catesbeiana) developing in sites polluted by a coal-burning power plant [J].
Hopkins, WA ;
Congdon, J ;
Ray, JK .
ENVIRONMENTAL TOXICOLOGY AND CHEMISTRY, 2000, 19 (04) :862-868
[59]   Interactive and Single Effects of Ectomycorrhiza Formation and Bacillus cereus on Metallothionein MT1 Expression and Phytoextraction of Cd and Zn by Willows [J].
Hrynkiewicz, Katarzyna ;
Dabrowska, Grazyna ;
Baum, Christel ;
Niedojadlo, Katarzyna ;
Leinweber, Peter .
WATER AIR AND SOIL POLLUTION, 2012, 223 (03) :957-968
[60]   Heavy metal removal from MSWI fly ash by electrokinetic remediation coupled with a permeable activated charcoal reactive barrier [J].
Huang, Tao ;
Li, Dongwei ;
Liu Kexiang ;
Zhang, Yuewei .
SCIENTIFIC REPORTS, 2015, 5