Von Mering C, Jensen CJ, Kuhn M, Chaffron S, Doerks M, Krüger B, Bork P (2007) STRING
7-recent developments in the integration and prediction of protein interactions. Nucleic Acids
Res 35:D358–D362
von Rozycki T, Nies DH (2009) Cupriavidus metallidurans: evolution of a metal-resistant bacterium. Antonie Van Leeuwenhoek 96(2):115–139
Wagner-Dobler I (2003) Pilot plant for bioremediation of mercurycontaining industrial wastewater.
Appl Microbiol Biotechnol 62(2–3):124–133
Wang J, Chen C (2006) Biosorption of heavy metal by Saccharomyces cerevisiae. Biotechnol Adv
24:427–451
Wang J, Chen C (2009) Biosorbents for heavy metals removal and their future. Biotechnol Adv
27:195–226
Wang Q, Li L, Chen M, Qi Q, Wang PG (2007) Construction of a novel system for cell surface
display of heterologous proteins on Pichia pastoris. J Biotechnol Lett 29:1561–1566
Williams GP, Gnanadesigan M, Ravikumar S (2012) Biosorption and biokinetic studies of
halobacterial strains against Ni
2+ , Al
3+ and Hg
2+ metal ions. Bioresour Technol 107:526–529
Wilson M, Lindow SE (1993) Release of recombinant microorganisms. Annu Rev Microbiol
47:913–944
Wu CH, Wood TK, Mulchandani A, Chen W (2006) Engineering plant-microbe symbiosis for
rhizoremediation of heavy metal. Appl Environ Microbiol 72(2):1129–1134
Wu G, Kang H, Zhang X, Shao H, Chu L, Ruan C (2010) A critical review on the bio-removal of
hazardous heavy metals from contaminated soils: issues, progress, eco-environmental concerns
and opportunities. J Hazard Mater 14:1–8
Wunderli-Ye H, Solioz M (1999) Copper homeostasis in Enterococcus hirae. In: Copper transport
and its disorders. Springer, Boston, pp 255–264
Xu Z, Bae W, Nulchandani A, Mehra RK, Chen W (2002) Heavy metal removal by novel
CBD-EC20 sorbents immobilized on cellulose. Biomacromolecules 3:462–465
Xue XM, Yan Y, Xu HJ, Wang N, Zhang X, Ye J (2014) ArsH from Synechocystis sp. PCC 6803
reduces chromate and ferric iron. FEMS Microbiol Lett 356:105–112
Yoon KP, Silver S (1991) A second gene in the Staphylococcus aureus cadA cadmium resistance
determinant of plasmid pI258. J Bacteriol 173:7636–7642
Yu P, Yuan J, Deng X, Ma M, Zhang H (2014) Subcellular targeting of bacterial CusF enhances Cu
accumulation and alters root to shoot Cu translocation in Arabidopsis. Plant Cell Physiol 55
(9):1568–1581
Zhang GL, Wu YZ, Qian XP, Meng Q (2005) Biodegradation of crude oil by Pseudomonas
aeruginosa in the presence of rhamnolipids. J Zhejiang Univ Sci 6(8):725–730
Zhang YM, Yin H, Ye JS, Peng H, Zhang N, Qin HM, Yang F, He BY (2007) Cloning and
expression of the nickel/cobalt transferase gene in E. coli BL21 and bioaccumulation of nickel
ion by genetically engineered strain. Huan Jing Ke Xue 28(4):918–923
Zhang H, Zhou Y, Bao H, Zhang L, Wang R, Zhou X (2015) Plasmidborne cadmium resistant
determinants are associated with the susceptibility of Listeria monocytogenes to bacteriophage.
Microbiol Res 172:1–6
Zouboulis AI, Matis KA, Lazaridis NK (2001) Removal of metal ions from simulated wastewater
by Saccharomyces yeast biomass: combining biosorption and flotation processes. Sep Sci
Technol 36:349–365
366
N. Srivastava
7-recent developments in the integration and prediction of protein interactions. Nucleic Acids
Res 35:D358–D362
von Rozycki T, Nies DH (2009) Cupriavidus metallidurans: evolution of a metal-resistant bacterium. Antonie Van Leeuwenhoek 96(2):115–139
Wagner-Dobler I (2003) Pilot plant for bioremediation of mercurycontaining industrial wastewater.
Appl Microbiol Biotechnol 62(2–3):124–133
Wang J, Chen C (2006) Biosorption of heavy metal by Saccharomyces cerevisiae. Biotechnol Adv
24:427–451
Wang J, Chen C (2009) Biosorbents for heavy metals removal and their future. Biotechnol Adv
27:195–226
Wang Q, Li L, Chen M, Qi Q, Wang PG (2007) Construction of a novel system for cell surface
display of heterologous proteins on Pichia pastoris. J Biotechnol Lett 29:1561–1566
Williams GP, Gnanadesigan M, Ravikumar S (2012) Biosorption and biokinetic studies of
halobacterial strains against Ni
2+ , Al
3+ and Hg
2+ metal ions. Bioresour Technol 107:526–529
Wilson M, Lindow SE (1993) Release of recombinant microorganisms. Annu Rev Microbiol
47:913–944
Wu CH, Wood TK, Mulchandani A, Chen W (2006) Engineering plant-microbe symbiosis for
rhizoremediation of heavy metal. Appl Environ Microbiol 72(2):1129–1134
Wu G, Kang H, Zhang X, Shao H, Chu L, Ruan C (2010) A critical review on the bio-removal of
hazardous heavy metals from contaminated soils: issues, progress, eco-environmental concerns
and opportunities. J Hazard Mater 14:1–8
Wunderli-Ye H, Solioz M (1999) Copper homeostasis in Enterococcus hirae. In: Copper transport
and its disorders. Springer, Boston, pp 255–264
Xu Z, Bae W, Nulchandani A, Mehra RK, Chen W (2002) Heavy metal removal by novel
CBD-EC20 sorbents immobilized on cellulose. Biomacromolecules 3:462–465
Xue XM, Yan Y, Xu HJ, Wang N, Zhang X, Ye J (2014) ArsH from Synechocystis sp. PCC 6803
reduces chromate and ferric iron. FEMS Microbiol Lett 356:105–112
Yoon KP, Silver S (1991) A second gene in the Staphylococcus aureus cadA cadmium resistance
determinant of plasmid pI258. J Bacteriol 173:7636–7642
Yu P, Yuan J, Deng X, Ma M, Zhang H (2014) Subcellular targeting of bacterial CusF enhances Cu
accumulation and alters root to shoot Cu translocation in Arabidopsis. Plant Cell Physiol 55
(9):1568–1581
Zhang GL, Wu YZ, Qian XP, Meng Q (2005) Biodegradation of crude oil by Pseudomonas
aeruginosa in the presence of rhamnolipids. J Zhejiang Univ Sci 6(8):725–730
Zhang YM, Yin H, Ye JS, Peng H, Zhang N, Qin HM, Yang F, He BY (2007) Cloning and
expression of the nickel/cobalt transferase gene in E. coli BL21 and bioaccumulation of nickel
ion by genetically engineered strain. Huan Jing Ke Xue 28(4):918–923
Zhang H, Zhou Y, Bao H, Zhang L, Wang R, Zhou X (2015) Plasmidborne cadmium resistant
determinants are associated with the susceptibility of Listeria monocytogenes to bacteriophage.
Microbiol Res 172:1–6
Zouboulis AI, Matis KA, Lazaridis NK (2001) Removal of metal ions from simulated wastewater
by Saccharomyces yeast biomass: combining biosorption and flotation processes. Sep Sci
Technol 36:349–365
366
N. Srivastava
