19. Kiefer, H., Klee, B., John, E., Stierhof, Y.-D., & Jähnig, F. (1991). Biosensors based on
membrane transport proteins. Biosensors & Bioelectronics, 6(3), 233–237.
20. Li, X., Cheng, R., Shi, H., Tang, B., Xiao, H., & Zhao, G. (2016). A simple highly sensitive
and selective aptamer-based colorimetric sensor for environmental toxins microcystin-LR in
water samples. Journal of Hazardous Materials, 304, 474–480.
21. Wu, Y., Zhan, S., Wang, F., He, L., Zhi, W., & Zhou, P. (2012). Cationic polymers and
aptamers mediated aggregation of gold nanoparticles for the colorimetric detection of arsenic
(III) in aqueous solution. Chemical Communications, 48(37), 4459–4461.
22. Song, K.-M., Jeong, E., Jeon, W., Jo, H., & Ban, C. (2012). A coordination polymer
nanobelt (CPNB)-based aptasensor for sulfadimethoxine. Biosensors & Bioelectronics, 33
(1), 113–119.
23. Bai, W., Zhu, C., Liu, J., Yan, M., Yang, S., & Chen, A. (2015). Gold nanoparticle–based
colorimetric aptasensor for rapid detection of six organophosphorous pesticides.
Environmental Toxicology and Chemistry, 34(10), 2244–2249.
24. Chung, E., Jeon, J., Yu, J., Lee, C., & Choo, J. (2015). Surface-enhanced Raman scattering
aptasensor for ultrasensitive trace analysis of bisphenol A. Biosensors & Bioelectronics, 64,
560–565.
25. Zhang, W., Liu, Q., Guo, Z., & Lin, J. (2018). Practical application of aptamer-based
biosensors in detection of low molecular weight pollutants in water sources. Molecules, 23
(2), 344.
26. Zhao, Y., Yang, X., Li, H., Luo, Y., Yu, R., Zhang, L., et al. (2015). Au nanoflower–Ag
nanoparticle assembled SERS-active substrates for sensitive MC-LR detection. Chemical
Communications, 51(95), 16908–16911.
27. Gao, B., Liu, H., & Gu, Z. (2016). An exothermic chip for point-of-care testing using a
forehead thermometer as a readout. Lab on a Chip, 16(3), 525–531.
28. Nikolaus, N., & Strehlitz, B. (2014). DNA-aptamers binding aminoglycoside antibiotics.
Sensors, 14(2), 3737–3755.
29. Lin, X., Cheng, C., Terry, P., Chen, J., Cui, H., & Wu, J. (2017). Rapid and sensitive
detection of bisphenol a from serum matrix. Biosensors & Bioelectronics, 91, 104–109.
30. Taranova, L., Fesay, A., Ivashchenko, G., Reshetilov, A., Winther-Nielsen, M., & Emnéus,
J. (2004). Comamonas testosteroni strain TI as a potential base for a microbial sensor
detecting surfactants. Applied Biochemistry and Microbiology, 40(4), 404–408.
31. Eltzov, E., & Marks, R. S. (2011). Whole-cell aquatic biosensors. Analytical and
Bioanalytical Chemistry, 400(4), 895–913.
32. Premkumar, J. R., Lev, O., Marks, R. S., Polyak, B., Rosen, R., & Belkin, S. (2001).
Antibody-based immobilization of bioluminescent bacterial sensor cells. Talanta, 55(5),
1029–1038.
33. Chakraborty, T., Babu, P. G., Alam, A., & Chaudhari, A. (2008). GFP expressing bacterial
biosensor to measure lead contamination in aquatic environment. Current Science
(00113891), 94(6).
34. Leth, S., Maltoni, S., Simkus, R., Mattiasson, B., Corbisier, P., Klimant, I., & Csöregi, E.
(2002). Engineered bacteria based biosensors for monitoring bioavailable heavy metals.
Electroanalysis: An International Journal Devoted to Fundamental and Practical Aspects of
Electroanalysis, 14(1), 35–42.
35. Theytaz, J., Braschler, T., Van Lintel, H., Renaud, P., Diesel, E., Merulla, D., & Van der
Meer, J. (2009). Biochip with E. coli bacteria for detection of arsenic in drinking water.
Procedia Chemistry, 1(1), 1003–1006.
36. Yoshida, K., Inoue, K., Takahashi, Y., Ueda, S., Isoda, K., Yagi, K., et al. (2008). Novel
carotenoid-based biosensor for simple visual detection of arsenite: characterization and
preliminary evaluation for environmental application. Applied and Environment
Microbiology, 74(21), 6730–6738.
37. García-Reyero, N., Grau, E., Castillo, M., De Alda, M. J. L., Barceló, D., & Piña, B. (2001).
Monitoring of endocrine disruptors in surface waters by the yeast recombinant assay.
Environmental Toxicology and Chemistry: An International Journal, 20(6), 1152–1158.
206
R. Sinha et al.
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