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Pollution 5(3):555–568
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the arsenic resistance ATPase of bacterial plasmids. Mol Microbiol 8:637–642
Singh N, Ma LQ, Srivastava M, Rathinasabapathi B (2006) Metabolic adaptations to arsenic
induced oxidative stress in Pteris vittata L. and Pteris ensiformis L. Plant Sci 170:274–282
Singh VP, Singh S, Kumar J, Prasad SM (2015) Hydrogen sulfide alleviates toxic effects of arsenate
in pea seedlings through up-regulation of the ascorbate–glutathione cycle: possible involvement
of nitric oxide. J Plant Physiol 181:20–29
Smedley PL, Kinniburgh DG (2002) A review of the source, behaviour and distribution of arsenic
in natural waters. Appl Geochem 17:517–568
Smedley P, Kinniburgh D (2012) A review of the source, behaviour and distribution of arsenic in
natural waters. Appl Geochem 17:517–568
Soldan R et al (2019) Bacterial endophytes of mangrove propagules elicit early establishment of the
natural host and promote growth of cereal crops under salt stress. Microbiol Res 223:33–43
Sommella A, Deacon C, Norton G, Pigna M, Violante A, Meharg AA (2013) Total arsenic,
inorganic arsenic, and other elements concentrations in Italian rice grain varies with origin
and type. Environ Pollut 181:38–43
Srivastava S, Srivastava A, Singh B, Suprasanna P, D’souza S (2013) The effect of arsenic on
pigment composition and photosynthesis in Hydrilla verticillata. Biol Plant 57:385–389
Srivastava S, Sinha P, Sharma YK (2017) Status of photosynthetic pigments, lipid peroxidation and
anti-oxidative enzymes in Vigna mungo in presence of arsenic. J Plant Nutr 40:298–306
Stolz JF, Basu P, Oremland RS (2002) Microbial transformation of elements: the case of arsenic and
selenium. Int Microbiol 5:201–207
Suhadolnik MLS, Salgado APC, Scholte LLS et al (2017) Novel arsenic-transforming bacteria and
the diversity of their arsenic-related genes and enzymes arising from arsenic-polluted freshwater
sediment. Sci Rep 7(1):11231. https://doi.org/10.1038/s41598-017-11548-8
Suresh K, Reddy GSN, Sengupta S, Shivaji S (2004) Deinococcus indicus sp. nov., an arsenicresistant bacterium from an aquifer in West Bengal, India. Int J Syst Evol Microbiol
54(2):457–461
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Russ J Plant Physiol 60:652–660
Tara N et al (2019) On-site performance of floating treatment wetland macrocosms augmented with
dye-degrading bacteria for the remediation of textile industry wastewater. J Clean Prod
Tofan-Lazar J, Al-Abadleh HA (2012) ATR-FTIR studies on the adsorption/desorption kinetics of
dimethylarsinic acid on iron–(oxyhydr) oxides. J Phys Chem A 116:1596–1604
Tripathi P, Singh PC, Mishra A, Srivastava S, Chauhan R, Awasthi S, Mishra S, Dwivedi S,
Tripathi P, Kalra A (2017) Arsenic tolerant Trichoderma sp. reduces arsenic induced stress in
chickpea (Cicer arietinum). Environ Pollut 223:137–145
Tu C, Ma LQ (2003) Interactive effects of pH, arsenic and phosphorus on uptake of As and P and
growth of the arsenic hyper accumulator Pteris vittata L. under hydroponic conditions. Environ
Exp Bot 50:243–251
Upadhyay A, Singh N, Singh R, Rai U (2016) Amelioration of arsenic toxicity in rice: comparative
effect of inoculation of Chlorella vulgaris and Nannochloropsis sp. on growth, biochemical
changes and arsenic uptake. Ecotoxicol Environ Saf 124:68–73
Vázquez S, Esteban E, Carpena RO (2008) Evolution of arsenate toxicity in nodulated white lupine
in a long-term culture. J Agric Food Chem 56:8580–8587
Wolf R (1974) On the question of occupational arsenic poisoning in vineyard workers.
Berufsdermatosen 22(1):34–37
Woźniak K, Blasiak J (2003) In vitro genotoxicity of lead acetate: induction of single and double
DNA strand breaks and DNA–protein cross-links. Mutat Res 535:127–139
12 Arsenic-Transforming Bacteria: A Potential Weapon for Arsenic-Contaminated Soil
267
Shishir T, Mahbub N (2019) Review on bioremediation: a tool to resurrect the polluted rivers.
Pollution 5(3):555–568
Silver S, Ji G, Broer S, Dey S, Dou D, Rosen BP (1993) Orphan enzyme or patriarch of a new tribe:
the arsenic resistance ATPase of bacterial plasmids. Mol Microbiol 8:637–642
Singh N, Ma LQ, Srivastava M, Rathinasabapathi B (2006) Metabolic adaptations to arsenic
induced oxidative stress in Pteris vittata L. and Pteris ensiformis L. Plant Sci 170:274–282
Singh VP, Singh S, Kumar J, Prasad SM (2015) Hydrogen sulfide alleviates toxic effects of arsenate
in pea seedlings through up-regulation of the ascorbate–glutathione cycle: possible involvement
of nitric oxide. J Plant Physiol 181:20–29
Smedley PL, Kinniburgh DG (2002) A review of the source, behaviour and distribution of arsenic
in natural waters. Appl Geochem 17:517–568
Smedley P, Kinniburgh D (2012) A review of the source, behaviour and distribution of arsenic in
natural waters. Appl Geochem 17:517–568
Soldan R et al (2019) Bacterial endophytes of mangrove propagules elicit early establishment of the
natural host and promote growth of cereal crops under salt stress. Microbiol Res 223:33–43
Sommella A, Deacon C, Norton G, Pigna M, Violante A, Meharg AA (2013) Total arsenic,
inorganic arsenic, and other elements concentrations in Italian rice grain varies with origin
and type. Environ Pollut 181:38–43
Srivastava S, Srivastava A, Singh B, Suprasanna P, D’souza S (2013) The effect of arsenic on
pigment composition and photosynthesis in Hydrilla verticillata. Biol Plant 57:385–389
Srivastava S, Sinha P, Sharma YK (2017) Status of photosynthetic pigments, lipid peroxidation and
anti-oxidative enzymes in Vigna mungo in presence of arsenic. J Plant Nutr 40:298–306
Stolz JF, Basu P, Oremland RS (2002) Microbial transformation of elements: the case of arsenic and
selenium. Int Microbiol 5:201–207
Suhadolnik MLS, Salgado APC, Scholte LLS et al (2017) Novel arsenic-transforming bacteria and
the diversity of their arsenic-related genes and enzymes arising from arsenic-polluted freshwater
sediment. Sci Rep 7(1):11231. https://doi.org/10.1038/s41598-017-11548-8
Suresh K, Reddy GSN, Sengupta S, Shivaji S (2004) Deinococcus indicus sp. nov., an arsenicresistant bacterium from an aquifer in West Bengal, India. Int J Syst Evol Microbiol
54(2):457–461
Talukdar D (2013) Arsenic-induced changes in growth and antioxidant metabolism of fenugreek.
Russ J Plant Physiol 60:652–660
Tara N et al (2019) On-site performance of floating treatment wetland macrocosms augmented with
dye-degrading bacteria for the remediation of textile industry wastewater. J Clean Prod
Tofan-Lazar J, Al-Abadleh HA (2012) ATR-FTIR studies on the adsorption/desorption kinetics of
dimethylarsinic acid on iron–(oxyhydr) oxides. J Phys Chem A 116:1596–1604
Tripathi P, Singh PC, Mishra A, Srivastava S, Chauhan R, Awasthi S, Mishra S, Dwivedi S,
Tripathi P, Kalra A (2017) Arsenic tolerant Trichoderma sp. reduces arsenic induced stress in
chickpea (Cicer arietinum). Environ Pollut 223:137–145
Tu C, Ma LQ (2003) Interactive effects of pH, arsenic and phosphorus on uptake of As and P and
growth of the arsenic hyper accumulator Pteris vittata L. under hydroponic conditions. Environ
Exp Bot 50:243–251
Upadhyay A, Singh N, Singh R, Rai U (2016) Amelioration of arsenic toxicity in rice: comparative
effect of inoculation of Chlorella vulgaris and Nannochloropsis sp. on growth, biochemical
changes and arsenic uptake. Ecotoxicol Environ Saf 124:68–73
Vázquez S, Esteban E, Carpena RO (2008) Evolution of arsenate toxicity in nodulated white lupine
in a long-term culture. J Agric Food Chem 56:8580–8587
Wolf R (1974) On the question of occupational arsenic poisoning in vineyard workers.
Berufsdermatosen 22(1):34–37
Woźniak K, Blasiak J (2003) In vitro genotoxicity of lead acetate: induction of single and double
DNA strand breaks and DNA–protein cross-links. Mutat Res 535:127–139
12 Arsenic-Transforming Bacteria: A Potential Weapon for Arsenic-Contaminated Soil
267
