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analysis of organic pollutants: Persistent organic pollutants, polycyclic aromatic hydrocarbons, and pharmaceuticals. Trends in Environmental Analytical Chemistry, p.e00063.
51. Kolahchi, N., Braiek, M., Ebrahimipour, G., Ranaei-Siadat, S. O., Lagarde, F., &
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and biomedical applications. Accounts of Chemical Research, 42(8), 1097–1107.
35. Ghosh, D., & Das, C. K. (2015). Hydrothermal growth of hierarchical Ni 3 S 2 and Co 3 S 4 on a
reduced graphene oxide hydrogel@ Ni foam: A high-energy-density aqueous asymmetric
supercapacitor. ACS Applied Materials & Interfaces, 7(2), 1122–1131.
36. Gorito, A. M., Ribeiro, A. R., Almeida, C. M. R., & Silva, A. M. (2017). A review on the
application of constructed wetlands for the removal of priority substances and contaminants of
emerging concern listed in recently launched EU legislation. Environmental Pollution, 227,
428–443.
37. Gosset, A., Durrieu, C., Renaud, L., Deman, A. L., Barbe, P., Bayard, R., et al. (2018).
Xurography-based microfluidic algal biosensor and dedicated portable measurement station
for online monitoring of urban polluted samples. Biosensors & Bioelectronics, 117, 669–677.
38. Guo, L., Li, Z., Chen, H., Wu, Y., Chen, L., Song, Z., et al. (2017). Colorimetric biosensor for
the assay of paraoxon in environmental water samples based on the iodine-starch color
reaction. Analytica Chimica Acta, 967, 59–63.
39. Guo, X. J., Hao, A. J., Han, X. W., Kang, P. L., Jiang, Y. C., & Zhang, X. J. (2011). The
investigation of the interaction between ribavirin and bovine serum albumin by spectroscopic
methods. Molecular Biology Reports, 38(6), 4185–4192.
40. Hayat, A., & Marty, J. (2014). Disposable screen printed electrochemical sensors: Tools for
environmental monitoring. Sensors, 14(6), 10432–10453.
41. He, X., Liu, H. U. I. B. I. A. O., Li, Y., Wang, S., Li, Y., Wang, N., et al. (2005). Gold
nanoparticle-based fluorometric and colorimetric sensing of copper (II) ions. Advanced
Materials, 17(23), 2811–2815.
42. Hennion, M. (2000). Sample handling strategies for the analysis of organic compounds in
environmental water samples. In D. Barceló (Ed.), Techniques and instrumentation in
analytical chemistry (pp. 3–71), Elsevier, 2017.
43. Huang, C. C., & Chang, H. T. (2006). Selective gold-nanoparticle-based “turn-on” fluorescent
sensors for detection of mercury (II) in aqueous solution. Analytical Chemistry, 78(24), 8332–
8338.
44. Jarque, S., Bittner, M., Blaha, L., & Hilscherova, K. (2016). Yeast biosensors for detection of
environmental pollutants: Current state and limitations. Trends in Biotechnology, 34(5), 408–
419.
45. Jouanneau, E., Wierinckx, A., Ducray, F., Favrel, V., Borson-Chazot, F., Honnorat, J., et al.
(2012). New targeted therapies in pituitary carcinoma resistant to temozolomide. Pituitary, 15
(1), 37–43.
46. Jouanneau, S., Durand, M. J., & Thouand, G. (2012). Online detection of metals in
environmental samples: Comparing two concepts of bioluminescent bacterial biosensors.
Environmental Science and Technology, 46(21), 11979–11987.
47. Kalogerakis, N., Arff, J., Banat, I. M., Broch, O. J., Daffonchio, D., Edvardsen, T., et al.
(2015). The role of environmental biotechnology in exploring, exploiting, monitoring,
preserving, protecting and decontaminating the marine environment. New Biotechnology, 32
(1), 157–167.
48. Kim, C. S., Choi, B. H., Seo, J. H., Lim, G., & Cha, H. J. (2013). Mussel adhesive
protein-based whole cell array biosensor for detection of organophosphorus compounds.
Biosensors & Bioelectronics, 41, 199–204.
49. Kim, D., Pertea, G., Trapnell, C., Pimentel, H., Kelley, R., & Salzberg, S. L. (2013). TopHat2:
Accurate alignment of transcriptomes in the presence of insertions, deletions and gene
fusions. Genome Biology, 14(4), R36.
50. Kim, L., Lee, D., Cho, H. K., & Choi, S. D. (2019). Review of the QuEChERS method for the
analysis of organic pollutants: Persistent organic pollutants, polycyclic aromatic hydrocarbons, and pharmaceuticals. Trends in Environmental Analytical Chemistry, p.e00063.
51. Kolahchi, N., Braiek, M., Ebrahimipour, G., Ranaei-Siadat, S. O., Lagarde, F., &
Jaffrezic-Renault, N. (2018). Direct detection of phenol using a new bacterial strain-based
conductometric biosensor. Journal of Environmental Chemical Engineering, 6(1), 478–484.
272
R. Khan et al.
