Kumar S, Dagar VK, Khasa YP, Kuhad RC (2013) Genetically modified microorganisms (GMOs)
for bioremediation. In: Kuhad RC, Singh A (eds) Biotechnology for environmental management
191 and resource recovery. Springer India. https://doi.org/10.1007/978-81-322-0876-1_11
Kuroda K, Ueda M (2003) Bioadsorption of cadmium ion by cell surface-engineered yeasts
displaying metallothionein and hexa-His. Appl Microbiol Biotechnol 63:182–186
Kuroda K, Ueda M (2010) Engineering of microorganisms towards recovery of rare metal ions:
mini review. Appl Microbiol Biotechnol 87:53–60
Kuroda K, Ueda M (2011) Yeast biosorption and recycling of metal ions by cell surface engineering. Microbial Biosorption Metals 10:235–247. https://doi.org/10.1007/978-94-007-0443/5-10
Kuroda K, Shibasaki S, Ueda M, Tanaka A (2001) Cell surface engineered yeast displaying a
histidine oligopeptide (hexa-His) has enhanced adsorption of and tolerance to heavy metal ions.
Appl Microbiol Biotechnol 57:697–701
Kuroda K, Ueda M, Shibasaki A, Tanaka A (2002) Cell surface-engineered yeast with ability to
bind, and self-aggregate in response tom copper ion. Appl Microbiol Biotechnol 59:259–264
Kuyucak N, Volesky B (1988) Desorption of cobalt-laden algal biosorbent. Biotechnol Bioeng
33:815–822
Lee W, Wood T, Chen W (2002) Engineering TCE-degrading Rhizobacteria for heavy metal
accumulation and enhanced TCE degradation. Biotechnol Bioeng:399–403. https://doi.org/10.
1002/bit.20950
Letunic I, Copley RR, Pils B, Pinkert S, Schultz J, Bork P (2006) SMART 5: domains in the context
of genomes and networks. Nucleic Acids Res 34:D257–D260
Li Y, Li B (2011) Study on fungi-bacteria consortium bioremediation of petroleum contaminated
mangrove sediments amended with mixed biosurfactants. Adv Mater Res 183–185:1163–1167
Liu J, Zhang Y, Huang D, Song G (2005) Cadmium induced MTs synthesis via oxidative stress in
yeast Saccharomyces cerevisiae. Mol Cell Biochem 280(1–2):139–145
Liu S, Zhang F, Chen J, Sun GX (2011) Arsenic removal from contaminated soil via
biovolatilization by genetically engineered bacteria under laboratory conditions. J Environ Sci
23(9):1544–1550
Lorenzo V, Herrero M, Sánchez JM, Timmis KN (1998) Minitransposons in microbial ecology and
environmental biotechnology. FEMS Microbiol Ecol 27:211–224
Lovley DR, Coates JD (1997) Bioremediation of metal contamination. Curr Opin Biotechnol
8:285–289
Machado MD, Santos MSF, Gouveia C, Soares HMVM, Soares EV (2008) Removal of heavy
metal using a brewer’s yeast strain of Saccharomyces cerevisiae: the flocculation as a separation
process. Bioresour Technol 99:2107–2115
Machado MD, Soares EV, Helena MVM, Soares HMVM (2010) Removal of heavy metals using a
brewer’s yeast strain of Saccharomyces cerevisiae: chemical speciation as a tool in the prediction and improving of treatment efficiency of real electroplating effluents. J Hazard Mater
180:347–353
Macomber L, Imlay JA (2009) The iron-sulfur clusters of dehydratases are primary intracellular
targets of copper toxicity. Proc Natl Acad Sci U S A 106:8344–8349
Malik A (2004) Metal bioremediation through growing cells. Environ Int 30:261–278
Mameri N, Boudries N, Addour L, Belhocine D, Lounici H, Grib H, Pauss A (1999) Batch zinc
biosorption by a bacterial nonliving Streptomyces rimosus biomass. Water Res 33:1347–1354
March JC, Rao G, Bentley WE (2003) Biotechnological applications of green fluorescent protein.
Appl Microbiol Biotechnol 62:303–315
Marzorati M, Balloi A, De Ferra F, Daffonchio D (2010) Identification of molecular markers to
follow up the bioremediation of sites contaminated with chlorinated compounds. Methods Mol
Biol 668:219–134
Mellano MA, Cooksey DA (1988) Induction of the copper resistance operon from Pseudomonas
syringae. J Bacteriol 170:4399–4401
360
N. Srivastava
for bioremediation. In: Kuhad RC, Singh A (eds) Biotechnology for environmental management
191 and resource recovery. Springer India. https://doi.org/10.1007/978-81-322-0876-1_11
Kuroda K, Ueda M (2003) Bioadsorption of cadmium ion by cell surface-engineered yeasts
displaying metallothionein and hexa-His. Appl Microbiol Biotechnol 63:182–186
Kuroda K, Ueda M (2010) Engineering of microorganisms towards recovery of rare metal ions:
mini review. Appl Microbiol Biotechnol 87:53–60
Kuroda K, Ueda M (2011) Yeast biosorption and recycling of metal ions by cell surface engineering. Microbial Biosorption Metals 10:235–247. https://doi.org/10.1007/978-94-007-0443/5-10
Kuroda K, Shibasaki S, Ueda M, Tanaka A (2001) Cell surface engineered yeast displaying a
histidine oligopeptide (hexa-His) has enhanced adsorption of and tolerance to heavy metal ions.
Appl Microbiol Biotechnol 57:697–701
Kuroda K, Ueda M, Shibasaki A, Tanaka A (2002) Cell surface-engineered yeast with ability to
bind, and self-aggregate in response tom copper ion. Appl Microbiol Biotechnol 59:259–264
Kuyucak N, Volesky B (1988) Desorption of cobalt-laden algal biosorbent. Biotechnol Bioeng
33:815–822
Lee W, Wood T, Chen W (2002) Engineering TCE-degrading Rhizobacteria for heavy metal
accumulation and enhanced TCE degradation. Biotechnol Bioeng:399–403. https://doi.org/10.
1002/bit.20950
Letunic I, Copley RR, Pils B, Pinkert S, Schultz J, Bork P (2006) SMART 5: domains in the context
of genomes and networks. Nucleic Acids Res 34:D257–D260
Li Y, Li B (2011) Study on fungi-bacteria consortium bioremediation of petroleum contaminated
mangrove sediments amended with mixed biosurfactants. Adv Mater Res 183–185:1163–1167
Liu J, Zhang Y, Huang D, Song G (2005) Cadmium induced MTs synthesis via oxidative stress in
yeast Saccharomyces cerevisiae. Mol Cell Biochem 280(1–2):139–145
Liu S, Zhang F, Chen J, Sun GX (2011) Arsenic removal from contaminated soil via
biovolatilization by genetically engineered bacteria under laboratory conditions. J Environ Sci
23(9):1544–1550
Lorenzo V, Herrero M, Sánchez JM, Timmis KN (1998) Minitransposons in microbial ecology and
environmental biotechnology. FEMS Microbiol Ecol 27:211–224
Lovley DR, Coates JD (1997) Bioremediation of metal contamination. Curr Opin Biotechnol
8:285–289
Machado MD, Santos MSF, Gouveia C, Soares HMVM, Soares EV (2008) Removal of heavy
metal using a brewer’s yeast strain of Saccharomyces cerevisiae: the flocculation as a separation
process. Bioresour Technol 99:2107–2115
Machado MD, Soares EV, Helena MVM, Soares HMVM (2010) Removal of heavy metals using a
brewer’s yeast strain of Saccharomyces cerevisiae: chemical speciation as a tool in the prediction and improving of treatment efficiency of real electroplating effluents. J Hazard Mater
180:347–353
Macomber L, Imlay JA (2009) The iron-sulfur clusters of dehydratases are primary intracellular
targets of copper toxicity. Proc Natl Acad Sci U S A 106:8344–8349
Malik A (2004) Metal bioremediation through growing cells. Environ Int 30:261–278
Mameri N, Boudries N, Addour L, Belhocine D, Lounici H, Grib H, Pauss A (1999) Batch zinc
biosorption by a bacterial nonliving Streptomyces rimosus biomass. Water Res 33:1347–1354
March JC, Rao G, Bentley WE (2003) Biotechnological applications of green fluorescent protein.
Appl Microbiol Biotechnol 62:303–315
Marzorati M, Balloi A, De Ferra F, Daffonchio D (2010) Identification of molecular markers to
follow up the bioremediation of sites contaminated with chlorinated compounds. Methods Mol
Biol 668:219–134
Mellano MA, Cooksey DA (1988) Induction of the copper resistance operon from Pseudomonas
syringae. J Bacteriol 170:4399–4401
360
N. Srivastava
