Girling CA (1984) Selenium in agriculture and the environment. Agric Ecosyst Environ 11
(1):37–65
Gonzalez CF, Ackerley DF, Park CH, Matin A (2003) A soluble flavoprotein contributes to
chromate reduction and tolerance by Pseudomonas putida. Acta Biotechnol 23(2–3):233–239
Goutam SP, Saxena G, Singh V, Yadav AK, Bharagava RN (2018) Green synthesis of TiO 2
nanoparticles using leaf extract of Jatropha curcas L. for photocatalytic degradation of tannery
wastewater. Chem Eng J 336:386–396. https://doi.org/10.1016/j.cej.2017.12.029
Green HH (1918) Description of bacterium which oxidizes arsenite to arsenate, and one which
reduces arsenate to arsenite, isolated from a cattle dipping-tank. S Afr J Med Sci 14:465–467
Greve K, Nielsen E, Ladefoged O (2007) Evaluation of health hazards by exposure to strontium in
drinking water. Toxicol Lett 172(Suppl 1):S210–S210
Guyo U, Makawa T, Moyo M, Nharingo T, Nyamunda BC, Mugadza T (2015) Application of
response surface methodology for Cd(II) adsorption on maize tassel-magnetite nanohybrid
adsorbent. J Environ Chem Eng 3(4):2472–2483
Haryanto R, Tambun R, Haloho H, Panjaitan F, Sitorus S (2017) Investigation on the ability of a
natural adsorbent corn stalk in removing heavy metal ions from aqueous solution. ARPN J Eng
Appl Sci 12(18):S263–S270
Hawley EL, Deeb RA, Kavanaugh MC, Jacobs JRG (2004) Treatment technologies for chromium
(VI). In: Cr(VI) Handbook/L1608_C08, vol 8. CRC Press LLC, New York, pp 273–308
Hill KE, Fry JC, Weightman AJ (1994) Gene transfer in the aquatic environment: persistence and
mobilization of the catabolic recombinant plasmid pDlO in the epilithon. Microbiol
140:1555–1563
Hiz MM, Aki C (2015) The nightmare: genetically modified organisms as alien species. Transylvan
Rev Sys Ecolog Res 16(1). https://doi.org/10.1515/trser-2015-0008
Horitsu H, Futo S, Miyazawa Y, Ogai S, Kawai K (1987) Enzymatic reduction of hexavalent
chromium by hexavalent chromium tolerant Pseudomonas ambigua G-1. Agric Biol Chem 51
(9):2417–2420
Hunter RJ, James M (1992) Charge reversal of kaolinite by hydrolyzable metal ions: an electroacoustic study. Clay Clay Miner 40(6):644–649
Igboamalu TE, Chirwa EMN (2017) As (III) oxidation and Cr(VI) reduction insight in an indigenous mixed culture of anaerobic bacteria from a local environment. PRES’17, Tiajing, China,
23-26 August 2017. Chem Eng Trans 61:259–264
Ilialetdinov AN, Abdrashitova SA (1981) Autotrophic oxidation of arsenic by a culture of Pseudomonas arsenitoxidans. Mikrobiologiya 50:197–204
Jaishankar M, Tseten T, Anbalagan N, Blessy B, Mathew BB, Beeregowda KN (2014) Toxicity,
mechanism and health effects of some heavy metals. Interdiscip Toxicol 7(2):60–72
Jeyasingh J, Somasundaram V, Philip L, Bhallamudi MS (2011) Pilot scale studies on the
remediation of chromium contaminated aquifer using bio-barrier and reactive zone technologies. Chem Eng J 167(1):206–214
Jin S, Fahlgren PH, Morris JM, Gossard RB (2008) Biological source treatment of acid mine
drainage using microbial and substrate amendments: microcosm studies. Mine Water Environ
27:20–30
Kalckar HM (1974) Origins of the concept oxidative phosphorylation. Mol Cell Biochem 5
(1–2):55–63
Khripunov VI, Kurbatov DK, Subbotin ML (2006) C-14 production in CTR materials and blankets.
In: Proc 21st Fusion Energy Conference (FEC2006), 16–21 October 2006, Chengdu, China. SE/
p2-3. Available online at http://www-pub.iaea.org/MTCD/Meetings/FEC2006/se_p2-3.pdf
Kossman SE, Weiss MA (2000) Acute myelogenous leukemia after exposure to strontium-89 for
the treatment of adenocarcinoma of the prostate. Cancer 88(3):620–624
Kotrba P (2011) Microbial biosorption of metals-general introduction. In: Microbial biosorption of
metals. Springer, Dordrecht. https://doi.org/10.1007/978-94-007-0443-5_1
Kratochvil D, Volesky B (1998) Advances in the biosorption of heavy metals. Trends Biotechnol
16(7):291–300
48
E. M. Nkhalambayausi-Chirwa et al.
Précédent

- 72/555

Suivant