Insights into the Status of Heavy Metal Resistant Rhizobacterial …
31
Kinoshita H, Sohma Y, Ohtake F, Ishida M, Kawai Y, Kitazawa H, Kimura K (2013) Biosorption of
heavy metals by lactic acid bacteria and identification of mercury binding protein. Res Microbiol
164(7):701–709
Kumar S, Dubey RS, Tripathi RD, Chakrabarty D, Trivedi PK (2015) Omics and biotechnology of
arsenic stress and detoxification in plants: current updates and prospective. Environ Int 74:221–
230
Lesmana SO, Febriana N, Soetaredjo FE, Sunarso J, Ismadji S (2009) Studies on potential applications of biomass for the separation of heavy metals from water and wastewater. Biochem Eng
J 44:19–41
Ma Y, Rajkumar M, Freitas H (2009) Inoculation of plant growth promoting bacterium Achromobacter xylosoxidans strain Ax10 for the improvement of copper phytoextraction by Brassica
juncea. J Environ Manag 90(2):831–837
Macek T, Mackova M (2011) Potential of biosorption technology. In: Microbial biosorption of
metals. Springer, Dordrecht, pp 7–17
Macomber L, Imlay JA (2009) The iron-sulfur clusters of dehydratases are primary intracellular
targets of copper toxicity. Proc Natl Acad Sci 106(20):8344–8349
Maillard AP, Künnemann S, Grobe C, Volbeda A, Schleuder G, Petit-Härtlein I, Covès J (2015)
Response of CnrX from Cupriavidus metallidurans CH34 to nickel binding. Metallomics
7(4):622–631
Malik A (2004) Metal bioremediation through growing cells. Environ Int 30(2):261–278
Matsui K, Yoshinami S, Narita M, Chien MF, Phung LT, Silver S, Endo G (2016) Mercury resistance
transposons in Bacilli strains from different geographical regions. FEMS Microbiol Lett 363(5)
Miransari M (2011) Hyperaccumulators, arbuscular mycorrhizal fungi and stress of heavy metals.
Biotechnol Adv 29(6):645–653
Mosa A, El-Ghamry A, Trüby P, Omar M, Gao B, Elnaggar A, Li Y (2016) Chemo-mechanical
modification of cottonwood for Pb2+ removal from aqueous solutions: sorption mechanisms and
potential application as biofilter in drip-irrigation. Chemosphere 161:1–9
Nadeem SM, Ahmad M, Zahir ZA, Javaid A, Ashraf M (2014) The role of mycorrhizae and
plant growth promoting rhizobacteria (PGPR) in improving crop productivity under stressful
environments. Biotechnol Adv 32:429–448. https://doi.org/10.1016/j.biotechadv.2013.12.005
Nies DH, Koch S, Wachi S, Peitzsch N, Saier MH (1998) CHR, a novel family of prokaryotic proton
motive force-driven transporters probably containing chromate/sulfateantiporters. J Bacteriol
180:5799–5802
Nies DH (1999) Microbial heavy-metal resistance. Appl Microbiol Biotechnol 51(6):730–750
Norberg AB, Persson H (1984) Accumulation of heavy-metal ions by Zoogloea ramigera.
Biotechnol Bioeng 26(3):239–246
Pagnanelli F, Viggi CC, Toro L (2010) Isolation and quantification of cadmium removal mechanisms
in batch reactors inoculated by sulphate reducing bacteria: biosorption versus bioprecipitation.
Bioresour Technol 101(9):2981–2987
Pehlivan E, Özkan AM, Dinç S, Parlayici ¸
S (2009) Adsorption of Cu 2+ and Pb 2+ ion on dolomite
powder. J Hazard Mater 167(1–3):1044–1049
Pepper IL, Gerba CP, Gentry TJ (2015) Environmental Microbiology, 3rd edn. Academic, San
Diego USA
Pokethitiyook P, Poolpak T (2016) Biosorption of heavy metal from aqueous solutions. In:
Phytoremediation, pp. 113–141. Springer, Cham
Rajkumar M, Ae N, Prasad MNV, Freitas H (2010) Potential of siderophore-producing bacteria for
improving heavy metal phytoextraction. Trends Biotechnol 28(3):142–149
Remoudaki E, Tsezos M, Hatzikioseyian A, Karakoussis V (1999) Mechanism of palladium biosorption by microbial biomass. The effects of metal ionic speciation and solution co-ions. Process
Metall 9:449–462
Román-Ponce B, Reza-vázquez DM, Gutiérrez-paredes S, María de jesús DE, Maldonadohernández J, Bahena-osorio Y (2017) Plant growth-promoting traits in rhizobacteria of heavy
31
Kinoshita H, Sohma Y, Ohtake F, Ishida M, Kawai Y, Kitazawa H, Kimura K (2013) Biosorption of
heavy metals by lactic acid bacteria and identification of mercury binding protein. Res Microbiol
164(7):701–709
Kumar S, Dubey RS, Tripathi RD, Chakrabarty D, Trivedi PK (2015) Omics and biotechnology of
arsenic stress and detoxification in plants: current updates and prospective. Environ Int 74:221–
230
Lesmana SO, Febriana N, Soetaredjo FE, Sunarso J, Ismadji S (2009) Studies on potential applications of biomass for the separation of heavy metals from water and wastewater. Biochem Eng
J 44:19–41
Ma Y, Rajkumar M, Freitas H (2009) Inoculation of plant growth promoting bacterium Achromobacter xylosoxidans strain Ax10 for the improvement of copper phytoextraction by Brassica
juncea. J Environ Manag 90(2):831–837
Macek T, Mackova M (2011) Potential of biosorption technology. In: Microbial biosorption of
metals. Springer, Dordrecht, pp 7–17
Macomber L, Imlay JA (2009) The iron-sulfur clusters of dehydratases are primary intracellular
targets of copper toxicity. Proc Natl Acad Sci 106(20):8344–8349
Maillard AP, Künnemann S, Grobe C, Volbeda A, Schleuder G, Petit-Härtlein I, Covès J (2015)
Response of CnrX from Cupriavidus metallidurans CH34 to nickel binding. Metallomics
7(4):622–631
Malik A (2004) Metal bioremediation through growing cells. Environ Int 30(2):261–278
Matsui K, Yoshinami S, Narita M, Chien MF, Phung LT, Silver S, Endo G (2016) Mercury resistance
transposons in Bacilli strains from different geographical regions. FEMS Microbiol Lett 363(5)
Miransari M (2011) Hyperaccumulators, arbuscular mycorrhizal fungi and stress of heavy metals.
Biotechnol Adv 29(6):645–653
Mosa A, El-Ghamry A, Trüby P, Omar M, Gao B, Elnaggar A, Li Y (2016) Chemo-mechanical
modification of cottonwood for Pb2+ removal from aqueous solutions: sorption mechanisms and
potential application as biofilter in drip-irrigation. Chemosphere 161:1–9
Nadeem SM, Ahmad M, Zahir ZA, Javaid A, Ashraf M (2014) The role of mycorrhizae and
plant growth promoting rhizobacteria (PGPR) in improving crop productivity under stressful
environments. Biotechnol Adv 32:429–448. https://doi.org/10.1016/j.biotechadv.2013.12.005
Nies DH, Koch S, Wachi S, Peitzsch N, Saier MH (1998) CHR, a novel family of prokaryotic proton
motive force-driven transporters probably containing chromate/sulfateantiporters. J Bacteriol
180:5799–5802
Nies DH (1999) Microbial heavy-metal resistance. Appl Microbiol Biotechnol 51(6):730–750
Norberg AB, Persson H (1984) Accumulation of heavy-metal ions by Zoogloea ramigera.
Biotechnol Bioeng 26(3):239–246
Pagnanelli F, Viggi CC, Toro L (2010) Isolation and quantification of cadmium removal mechanisms
in batch reactors inoculated by sulphate reducing bacteria: biosorption versus bioprecipitation.
Bioresour Technol 101(9):2981–2987
Pehlivan E, Özkan AM, Dinç S, Parlayici ¸
S (2009) Adsorption of Cu 2+ and Pb 2+ ion on dolomite
powder. J Hazard Mater 167(1–3):1044–1049
Pepper IL, Gerba CP, Gentry TJ (2015) Environmental Microbiology, 3rd edn. Academic, San
Diego USA
Pokethitiyook P, Poolpak T (2016) Biosorption of heavy metal from aqueous solutions. In:
Phytoremediation, pp. 113–141. Springer, Cham
Rajkumar M, Ae N, Prasad MNV, Freitas H (2010) Potential of siderophore-producing bacteria for
improving heavy metal phytoextraction. Trends Biotechnol 28(3):142–149
Remoudaki E, Tsezos M, Hatzikioseyian A, Karakoussis V (1999) Mechanism of palladium biosorption by microbial biomass. The effects of metal ionic speciation and solution co-ions. Process
Metall 9:449–462
Román-Ponce B, Reza-vázquez DM, Gutiérrez-paredes S, María de jesús DE, Maldonadohernández J, Bahena-osorio Y (2017) Plant growth-promoting traits in rhizobacteria of heavy
