59
dans l'eau de mer – une revue. *Journal of Environmental Management*, 151, p.p
44-55.
78. Wu, C., Lin, C (2018). *The β-Lactamase Gene Profile and a Plasmid-Carrying
Multiple Heavy Metal Resistance Genes of Enterobacter cloacae*.
79. Wu, W., Feng, Y et al (2019). *Characterization of a strain representing a new
Enterobacter species, Enterobacter chengduensis sp. nov.* Antonie Van
Leeuwenhoek, 112, p.p 491-500.
80. Xedzro, C., Shimamoto, T., Yu, L., Zuo, H., Sugawara, Y., Sugai, M., & Shimamoto, T.
(2023). *Emergence of colistin-resistant Enterobacter cloacae and Raoultella
ornithinolytica carrying the phosphoethanolamine transferase gene, mcr-9,
derived from vegetables in Japan*. [Journal name and publication specifics are
missing from the original list.]
81. Yuan, X., Zhang, Y et al (2019). Characterization of heavy metal-resistant
bacteria from contaminated environments and their potential use in
bioremediation*. *Environmental Science and Pollution Research*, 26, p.p
23000-23010.
82. Zawisza, M., & Kubiak, K. (2020). The Effectiveness of Biosorption for Heavy
Metal Removal from Contaminated Water. Environmental Science & Technology,
54(5), p.p 2896-2903
83. Zhu, X., Liang, X et al (2020). Development of a novel biosensor for rapid
detection of heavy metals in aquatic environments*. *Journal of Hazardous
Materials*, 385, 121533.
84. Zolfaghari, S., & Tavakoli, H. (2017). Comparative study on biosorption of
heavy metals by different types of microbial biomass. Journal of Environmental
Management, 199, p.p 48-56.
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