Schelert J, Drozda M, Dixit V, Dillman A, Blum P (2006) Regulation of mercury resistance in the
crenarchaeote Sulfolobus solfataricus. J Bacteriol 188:7141–7150
Schelert J, Rudrappa D, Johnson T, Blum P (2013) Role of MerH in mercury resistance in the
archaeon Sulfolobus solfataricus. Microbiology 159:1198–1208
Schmidt T, Schlegel HG (1994) Combined nickel-cobalt-cadmium resistance encoded by the ncc
locus of Alcaligenes xylosoxidans 31A. J Bacteriol 176:7045–7054
Schmitt M, Schwanewilm P, Ludwig J, Fraté LH (2006) Use of PMA1 as a housekeeping biomarker
for assessment of toxicant- induced stress in Saccharomyces cerevisiae. Appl Environ Microbiol
72(2):1515–1522
Schneiker S, Keller M, Dröge M, Lanka E, Pühler A, Selbitschka W (2001) The genetic organization and evolution of the broad host range mercury resistance plasmid pSB102 isolated from a
microbial population residing in the rhizosphere of alfalfa. Nucleic Acids Res 29:5169–5181
Schue M, Dover LG, Besra GS, Parkhill J, Brown NL (2009) Sequence and analysis of a plasmidencoded mercury resistance operon from Mycobacterium marinum identifies MerH, a
newmercuric ion transporter. J Bacteriol 191:439–444
Schweizer HP (2003) Applications of the Saccharomyces cerevisiae Flp-FRT system in bacterial
genetics. J Mol Microbiol Biotechnol 5:67–77
Selatnia A, Boukazoula A, Kechid BN, Bakhti MZ, Chergui A, Kerchich Y (2004) Biosorption of
lead (II) from aqueous solution by a bacterial dead Streptomyces rimosus biomass. J Eng
Biochem 19(2):127–135
Silva E, Fialho AM, Sá-Correia I, Burns RG, Shaw LJ (2004) Combined bioaugmentation and
biostimulation to cleanup soil contaminateed with high concentrations of atrazine. Environ Sci
Technol 15–38(2):632–637
Silver S (1998) Genes for all metals – a bacterial view of the periodic table. The 1996 Thom Award
Lecture. J Ind Microbiol Biotechnol 20:1–12
Silver S, Misra TK (1984) Bacterial transformations of and resistances to heavy metals. In: Genetic
control of environmental pollutants. Springer, Boston, pp 23–46
Silver S, Phung LT (2013) Bacterial mercury resistance proteins. In: Encyclopedia of
Metalloproteins. Springer, New York, pp 209–217
Singh SK, Grass G, Rensing C, Montfort WR (2004) Cuprous oxidase activity of CueO from
Escherichia coli. J Bacteriol 86:7815–7817
Singh JS, Abhilash PC, Singh HB, Singh RP, Singh DP (2011) Genetically engineered bacteria: an
emerging tool for environmental remediation and future perspectives. Gene 480(1–2):1–9,
36851
Singh SN, Goyal SK, Singh SR (2015) Bioremediation of heavy metals polluted soils and their
effect on plants. Agriways 3(1):19–24
Smith K, Novick RP (1972) Genetic studies on plasmid-linked cadmium resistance in Staphylococcus aureus. J Bacteriol 112:761–772
Smith MC, Sumner ER, Avery SV (2007) Glutathione and Gts1p drive beneficial variability in the
cadmium resistances of individual yeast cells. Mol Microbiol 66(3):699–712
Soares EV, Hebbelinck K, Soares HM (2003) Toxic effects caused by heavy metals in the yeast
Saccharomyces cerevisiae: a comparative study. J Microbiol 49(5):336–343
Sriprang R, Hayashi M, Ono H, Takagi M, Hirata K, Murooka Y (2003) Enhanced accumulation of
Cd2+ by a Mesorhizobium sp. transformed with a gene from Arabidopsis thaliana coding for
phytochelatin synthase. Appl Environ Microbiol 69:179–796
Stahler FN, Odenbreit S, Haas R, Wilrich J, Van Vliet AH, Kusters JG, Kist M, Bereswill S (2006)
The novel Helicobacter pylori CznABC metal efflux pump is required for cadmium, zinc, and
nickel resistance, ureasemodulation, and gastric colonization. Infect Immun 74:3845–3852
Tabak HH, Lens P, Hullebusch EDV, Dejonghe W (2005) Developments in bioremediation of soil
and sediments polluted with metals and radionuclides–1. Microbiolal processes and
mechanisms affecting bioremediation of metal contamination and influencing meal toxicity.
Rev Environ Sci Biotechnol 4:115–156
364
N. Srivastava
crenarchaeote Sulfolobus solfataricus. J Bacteriol 188:7141–7150
Schelert J, Rudrappa D, Johnson T, Blum P (2013) Role of MerH in mercury resistance in the
archaeon Sulfolobus solfataricus. Microbiology 159:1198–1208
Schmidt T, Schlegel HG (1994) Combined nickel-cobalt-cadmium resistance encoded by the ncc
locus of Alcaligenes xylosoxidans 31A. J Bacteriol 176:7045–7054
Schmitt M, Schwanewilm P, Ludwig J, Fraté LH (2006) Use of PMA1 as a housekeeping biomarker
for assessment of toxicant- induced stress in Saccharomyces cerevisiae. Appl Environ Microbiol
72(2):1515–1522
Schneiker S, Keller M, Dröge M, Lanka E, Pühler A, Selbitschka W (2001) The genetic organization and evolution of the broad host range mercury resistance plasmid pSB102 isolated from a
microbial population residing in the rhizosphere of alfalfa. Nucleic Acids Res 29:5169–5181
Schue M, Dover LG, Besra GS, Parkhill J, Brown NL (2009) Sequence and analysis of a plasmidencoded mercury resistance operon from Mycobacterium marinum identifies MerH, a
newmercuric ion transporter. J Bacteriol 191:439–444
Schweizer HP (2003) Applications of the Saccharomyces cerevisiae Flp-FRT system in bacterial
genetics. J Mol Microbiol Biotechnol 5:67–77
Selatnia A, Boukazoula A, Kechid BN, Bakhti MZ, Chergui A, Kerchich Y (2004) Biosorption of
lead (II) from aqueous solution by a bacterial dead Streptomyces rimosus biomass. J Eng
Biochem 19(2):127–135
Silva E, Fialho AM, Sá-Correia I, Burns RG, Shaw LJ (2004) Combined bioaugmentation and
biostimulation to cleanup soil contaminateed with high concentrations of atrazine. Environ Sci
Technol 15–38(2):632–637
Silver S (1998) Genes for all metals – a bacterial view of the periodic table. The 1996 Thom Award
Lecture. J Ind Microbiol Biotechnol 20:1–12
Silver S, Misra TK (1984) Bacterial transformations of and resistances to heavy metals. In: Genetic
control of environmental pollutants. Springer, Boston, pp 23–46
Silver S, Phung LT (2013) Bacterial mercury resistance proteins. In: Encyclopedia of
Metalloproteins. Springer, New York, pp 209–217
Singh SK, Grass G, Rensing C, Montfort WR (2004) Cuprous oxidase activity of CueO from
Escherichia coli. J Bacteriol 86:7815–7817
Singh JS, Abhilash PC, Singh HB, Singh RP, Singh DP (2011) Genetically engineered bacteria: an
emerging tool for environmental remediation and future perspectives. Gene 480(1–2):1–9,
36851
Singh SN, Goyal SK, Singh SR (2015) Bioremediation of heavy metals polluted soils and their
effect on plants. Agriways 3(1):19–24
Smith K, Novick RP (1972) Genetic studies on plasmid-linked cadmium resistance in Staphylococcus aureus. J Bacteriol 112:761–772
Smith MC, Sumner ER, Avery SV (2007) Glutathione and Gts1p drive beneficial variability in the
cadmium resistances of individual yeast cells. Mol Microbiol 66(3):699–712
Soares EV, Hebbelinck K, Soares HM (2003) Toxic effects caused by heavy metals in the yeast
Saccharomyces cerevisiae: a comparative study. J Microbiol 49(5):336–343
Sriprang R, Hayashi M, Ono H, Takagi M, Hirata K, Murooka Y (2003) Enhanced accumulation of
Cd2+ by a Mesorhizobium sp. transformed with a gene from Arabidopsis thaliana coding for
phytochelatin synthase. Appl Environ Microbiol 69:179–796
Stahler FN, Odenbreit S, Haas R, Wilrich J, Van Vliet AH, Kusters JG, Kist M, Bereswill S (2006)
The novel Helicobacter pylori CznABC metal efflux pump is required for cadmium, zinc, and
nickel resistance, ureasemodulation, and gastric colonization. Infect Immun 74:3845–3852
Tabak HH, Lens P, Hullebusch EDV, Dejonghe W (2005) Developments in bioremediation of soil
and sediments polluted with metals and radionuclides–1. Microbiolal processes and
mechanisms affecting bioremediation of metal contamination and influencing meal toxicity.
Rev Environ Sci Biotechnol 4:115–156
364
N. Srivastava
