climate change along with other environmental change will alter microbial communities, as it is predicted that climate change will alter whole earth ecosystem.
Therefore, climate change along with microbial processes would be an interesting
field of research.
References
Abatenh E, Gizaw B, Tsegaye Z, Wassie M (2017) The role of microorganisms in bioremediationa review. Open J Environ Biol 2(1):30–46
Abdel Rahman RO, Elmesawy M, Ashour I, Hung YT (2013) Remediation of NORM and
TENORM contaminated sites – review article. Environ Prog Sustain Energy 33(2):588–596
Achal V, Pan X, Zhang D (2012) Bioremediation of strontium (Sr) contaminated aquifer quartz
sand based on carbonate precipitation induced by Sr resistant Halomonas sp. Chemosphere 89
(6):764–768
Alami NH (2014) The influence of microbial consortium in bioremediation process using bioreactor. IPTEK J Sci 1(1):1–4
Albrecht-Schmitt TE (2019) Actinide chemistry at the extreme. Inorg Chem 58:1721–1723
Appukuttan D, Rao AS, Apte SK (2006) Engineering of Deinococcus radiodurans R1 for
bioprecipitation of uranium from dilute nuclear waste. Appl Environ Microbiol 72
(12):7873–7878
Ayangbenro AS, Babalola OO (2017) A new strategy for heavy metal polluted environments: a
review of microbial biosorbents. Int J Environ Res Public Health 14(1):94
Baeza A, Hernández S, Guillén FJ, Moreno G, Manjon JL, Pascual R (2004) Radiocaesium and
natural gamma emitters in mushrooms collected in Spain. Sci Total Environ 318(1–3):59–71
Baeza A, Guillén J (2006) Influence of the soil bioavailability of radionuclides on the transfer of
uranium and thorium to mushrooms. Appl Radiat Isot 64(9):1020–1026
Banerjee A, Jhariya MK, Yadav DK, Raj A (2018) Micro-remediation of metals: a new frontier in
bioremediation. In: Handbook of environmental materials management. Springer, Cham
Beazley MJ, Martinez RJ, Sobecky PA, Webb SM, Taillefert M (2007) Uranium biomineralization
as a result of bacterial phosphatase activity: insights from bacterial isolates from a contaminated
subsurface. Environ Sci Technol 41(16):5701–5707
Boopathy R (2000) Factors limiting bioremediation technologies. Bioresour Technol 74(1):63–67
Boukhalfa H, Icopini GA, Reilly SD, Neu MP (2007) Plutonium (IV) reduction by the metalreducing bacteria Geobacter metallireducens GS15 and Shewanella oneidensis MR1. Appl
Environ Microbiol 73(18):5897–5903
Brandao-Mello CE, Farina R, Rodrigues de Oliveira A, Curado MP, Santos QCB (2000) Medical
follow-up of the radiation accident with 137 Cs in Goiania-an update (1990-1994)
Bryant PA (2019) Radiation physics and the structure of matter. Airborne radioactive discharges
and human health effects, pp 1–16. https://doi.org/10.1088/2053-2563/aafa6dch1
Butler JE, Glaven RH, Esteve-Núñez A, Núnez C, Shelobolina ES, Bond DR, Lovley DR (2006)
Genetic characterization of a single bifunctional enzyme for fumarate reduction and succinate
oxidation in Geobacter sulfurreducens and engineering of fumarate reduction in Geobacter
metallireducens. J Bacteriol 188(2):450–455
Coelho LM, Rezende HC, Coelho LM, Sousa PAR, de Melo DFO, Coelho NMM (2015) Bioremediation of polluted waters using microorganisms. https://doi.org/10.5772/60770
Coeytaux K, Bey E, Christensen D, Glassman ES, Murdock B, Doucet C (2015) Reported radiation
overexposure accidents worldwide, 1980-2013: a systematic review. PLoS One 10(3):e0118709
Diep P, Mahadevan R, Yakunin AF (2018) Heavy metal removal by bioaccumulation using
genetically engineered microorganisms. Front Bioeng Biotechnol 6:157
348
U. K. Vandana et al.
Therefore, climate change along with microbial processes would be an interesting
field of research.
References
Abatenh E, Gizaw B, Tsegaye Z, Wassie M (2017) The role of microorganisms in bioremediationa review. Open J Environ Biol 2(1):30–46
Abdel Rahman RO, Elmesawy M, Ashour I, Hung YT (2013) Remediation of NORM and
TENORM contaminated sites – review article. Environ Prog Sustain Energy 33(2):588–596
Achal V, Pan X, Zhang D (2012) Bioremediation of strontium (Sr) contaminated aquifer quartz
sand based on carbonate precipitation induced by Sr resistant Halomonas sp. Chemosphere 89
(6):764–768
Alami NH (2014) The influence of microbial consortium in bioremediation process using bioreactor. IPTEK J Sci 1(1):1–4
Albrecht-Schmitt TE (2019) Actinide chemistry at the extreme. Inorg Chem 58:1721–1723
Appukuttan D, Rao AS, Apte SK (2006) Engineering of Deinococcus radiodurans R1 for
bioprecipitation of uranium from dilute nuclear waste. Appl Environ Microbiol 72
(12):7873–7878
Ayangbenro AS, Babalola OO (2017) A new strategy for heavy metal polluted environments: a
review of microbial biosorbents. Int J Environ Res Public Health 14(1):94
Baeza A, Hernández S, Guillén FJ, Moreno G, Manjon JL, Pascual R (2004) Radiocaesium and
natural gamma emitters in mushrooms collected in Spain. Sci Total Environ 318(1–3):59–71
Baeza A, Guillén J (2006) Influence of the soil bioavailability of radionuclides on the transfer of
uranium and thorium to mushrooms. Appl Radiat Isot 64(9):1020–1026
Banerjee A, Jhariya MK, Yadav DK, Raj A (2018) Micro-remediation of metals: a new frontier in
bioremediation. In: Handbook of environmental materials management. Springer, Cham
Beazley MJ, Martinez RJ, Sobecky PA, Webb SM, Taillefert M (2007) Uranium biomineralization
as a result of bacterial phosphatase activity: insights from bacterial isolates from a contaminated
subsurface. Environ Sci Technol 41(16):5701–5707
Boopathy R (2000) Factors limiting bioremediation technologies. Bioresour Technol 74(1):63–67
Boukhalfa H, Icopini GA, Reilly SD, Neu MP (2007) Plutonium (IV) reduction by the metalreducing bacteria Geobacter metallireducens GS15 and Shewanella oneidensis MR1. Appl
Environ Microbiol 73(18):5897–5903
Brandao-Mello CE, Farina R, Rodrigues de Oliveira A, Curado MP, Santos QCB (2000) Medical
follow-up of the radiation accident with 137 Cs in Goiania-an update (1990-1994)
Bryant PA (2019) Radiation physics and the structure of matter. Airborne radioactive discharges
and human health effects, pp 1–16. https://doi.org/10.1088/2053-2563/aafa6dch1
Butler JE, Glaven RH, Esteve-Núñez A, Núnez C, Shelobolina ES, Bond DR, Lovley DR (2006)
Genetic characterization of a single bifunctional enzyme for fumarate reduction and succinate
oxidation in Geobacter sulfurreducens and engineering of fumarate reduction in Geobacter
metallireducens. J Bacteriol 188(2):450–455
Coelho LM, Rezende HC, Coelho LM, Sousa PAR, de Melo DFO, Coelho NMM (2015) Bioremediation of polluted waters using microorganisms. https://doi.org/10.5772/60770
Coeytaux K, Bey E, Christensen D, Glassman ES, Murdock B, Doucet C (2015) Reported radiation
overexposure accidents worldwide, 1980-2013: a systematic review. PLoS One 10(3):e0118709
Diep P, Mahadevan R, Yakunin AF (2018) Heavy metal removal by bioaccumulation using
genetically engineered microorganisms. Front Bioeng Biotechnol 6:157
348
U. K. Vandana et al.
