184
Bioremediation for Sustainable Environmental Cleanup
Mehana, E.-S. E., A. F. Khafaga, S. S. Elblehi, M. E. Abd El-Hack, M. A. E. Naiel, M. Bin-Jumah, S. I. Othman and
A. A. Allam. 2020. Biomonitoring of heavy metal pollution using Acanthocephalans parasite in ecosystem:
An updated overview. Animals 10(5): 811.
Meharg, A. A. 2004. Arsenic in rice—understanding a new disaster for South-East Asia. Trends. Plant Sci. 9: 415–417.
Messer, R. L. W., P. E. Lockwood, W. Y. Tseng, K. Edwards, M. Shaw, G. B. Caughman et al. 2005. Mercury (II) alters
mitochondrial activity of monocytes at sublethal doses via oxidative stress mechanisms. J. Biomed. Mater.
Res. Part B: Appl. Biomater. 75: 257–263.
Miqueleto, A. P., C. C. Dolosic, E. Pozzi, E. Foresti and M. Zaiat. 2010. Influence of carbon sources and C/N ratio on
EPS production in anaerobic sequencing batch biofilm reactors for wastewater treatment. Bioresour. Technol.
101: 1324–1330.
Mishra, A. and A. Malik. 2013. Recent advances in microbial metal bioaccumulation. Crit. Rev. Environ. Sci. Technol.
43: 1162–1222.
Montazer-Rahmati, M. M., P. Rabbani, A. Abdolali and A. R. Keshtkar. 2011. Kinetics and equilibrium studies on
biosorption of cadmium, lead, and nickel ions from aqueous solutions by intact and chemically modified
brown algae. J. Hazard. Mater. 185: 401–407.
More, T. T., J. S. S. Yadav, S. Yan, R. D. Tyagi and R. Y. Surampalli. 2014. Extracellular polymeric substances of
bacteria and their potential environmental applications. J. Environ. Manag. 144: 1–25.
Mujtaba Munir, M. A., G. Liu, B. Yousaf, M. U. Ali, Q. Abbas and H. Ullah. 2020. Synergistic effects of biochar and
processed fly ash on bioavailability, transformation and accumulation of heavy metals by maize (Zea mays L.)
in coal-mining contaminated soil. Chemosphere. 240: 124845.
Mulligan, C. N., R. N. Yong, B. F. Gibbs, S. James and H. P.J. Bennett. 1999. Metal removal from contaminated soil
and sediments by the biosurfactant surfactin. Environ. Sci. Technol. 33: 3812–3820.
Mulligan, C. N. 2005. Environmental applications for biosurfactants. Environ. Pollut. 133: 183–198.
Musilova, J., J. Arvay, A. Vollmannova, T. Toth and J. Tomas. 2016. Environmental contamination by heavy metals in
region with previous mining activity. Bull. Environ. Contam. Toxicol. 97: 569–575.
Nagajyoti, P. C., K. D. Lee and T. V. M. Sreekanth. 2010. Heavy metals, occurrence and toxicity for plants: a review.
Environ. Chem. Lett. 8: 199–216.
Navarro, E., H. Guasch and S. Sabater. 2002. Use of microbenthic algal communities in ecotoxicological tests for the
assessment of water quality: the Ter river case study. J. Appl. Phycol. 14: 41–48.
Nogawa, K., E. Kobayashi, Y. Okubo and Y. Suwazono. 2004. Environmental cadmium exposure, adverse effects and
preventive measures in Japan. Biometals. 17: 581–587.
Nordberg, G. F. 2004. Cadmium and health in the 21st century—historical remarks and trends for the future.
Biometals. 17: 485–489.
Okereafor, U., M. Makhatha, L. Mekuto, N. Uche-Okereafor, T. Sebola and V. Mavumengwana. 2020. Toxic metal
implications on agricultural soils, plants, animals, aquatic life and human health. Int. J. Environ. Res. Public
Health. 17: 2204.
Okibe, N., M. Maki, D. Nakayama and K. Sasaki. 2016. Microbial recovery of vanadium by the acidophilic bacterium,
Acidocella aromatica. Biotechnol. Lett. 38: 1475–1481.
Özdemir, S., E. Klnç, A. Poli and B. Nicolaus. 2013. Biosorption of heavy metals (Cd2+, Cu2+, Co 2+, and Mn2+) by
thermophilic bacteria, Geobacillus thermantarcticus and Anoxybacillus amylolyticus: equilibrium and kinetic
studies. Bioremediat. J. 17: 86–96.
Pacwa-Płociniczak, M., G. A. Płaza, Z. Piotrowska-Seget and S. S. Cameotra. 2011. Environmental applications of
biosurfactants: recent advances. Int. J. Mol. Sci. 12: 633–654.
Pal, A. and A. K. Paul. 2008. Microbial extracellular polymeric substances: central elements in heavy metal
bioremediation. Indian J. Microbio. 48: 49–64.
Patel, J., Q. Zhang, R. M. L. McKay, R. Vincent and Z. Xu. 2010. Genetic engineering of caulobacter crescentus for
removal of cadmium from water. Appl. Biochem. Biotechnol. 160: 232–243.
Peacock, A. D., Y. J. Chang, J. D. Istok, L. Krumholz, R. Geyer, B. Kinsall et al. 2004. Utilization of microbial
biofilms as monitors of bioremediation. Microb. Ecol. 47: 284–292.
Plum, L. M., L. Rink and H. Haase. 2010. The essential toxin: impact of zinc on human health. Int. J. Environ. Res.
Public Health. 7: 1342–1365.
Pratt, L. A. and R. Kolter. 1999. Genetic analyses of bacterial biofilm formation. Curr. Opin. Microbiol. 2: 598–603.
Rahman, S. F., R. S. Kantor, R. Huddy, B. C. Thomas, A. W. van Zyl, S. T. L. Harrison et al. 2017. Genome-resolved
metagenomics of a bioremediation system for degradation of thiocyanate in mine water containing suspended
solid tailings. Microbiol. Open. 6: e00446.
Rajaganapathy, V., F. Xavier, D. Sreekumar and P. K. Mandal. 2011. Heavy metal contamination in soil, water and
fodder and their presence in livestock and products: a review. J. Environ. Sci. Technol. 4: 234–249.
Ray, R. R. 2016. Adverse hematological effects of hexavalent chromium: an overview. Interdiscip. Toxicol. 9: 55–65.