TREX1 cause autosomal dominant retinal vasculopathy with cerebral leukodystrophy.
Nature Genetics, 39(9), 1068.
32. Cui, L., Wu, J., & Ju, H. (2015). Electrochemical sensing of heavy metal ions with
inorganic, organic and bio-materials. Biosensors & Bioelectronics, 63, 276–286.
33. Barton, J., et al. (2016). Screen-printed electrodes for environmental monitoring of heavy
metal ions: a review. Microchimica Acta, 183, 503–517.
34. Quang, D. T., & Kim, J. S. (2010). Fluoro- and Chromogenic Chemodosimeters for heavy
metal ion detection in solution and biospecimens. Chemical Reviews, 110, 6280–6301.
35. Gumpu, M. B., Sethuraman, S., Krishnan, U. M., & Rayappan, J. B. B. (2015). A review on
detection of heavy metal ions in water An electrochemical approach. Sensors Actuators, B
Chemical, 213, 515–533.
36. Lu, Y., et al. (2018). A review of the identification and detection of heavy metal ions in the
environment by voltammetry. Talanta, 178, 324–338.
37. Weiner, E. National recommended water quality criteria. Applications of Environmental
Chemistry (2010). https://doi.org/10.1201/9781420032963.axb
38. Bansod, B. K., Kumar, T., Thakur, R., Rana, S., & Singh, I. (2017). A review on various
electrochemical techniques for heavy metal ions detection with different sensing platforms.
Biosensors & Bioelectronics, 94, 443–455.
39. Verma, R., & Gupta, B. D. (2015). Detection of heavy metal ions in contaminated water by
surface plasmon resonance based optical fibre sensor using conducting polymer and
chitosan. Food Chemistry, 166, 568–575.
40. Terra, I. A. A., Mercante, L. A., Andre, R. S., & Correa, D. S. (2017). Fluorescent and
colorimetric electrospun nanofibers for heavy-metal sensing. Biosensors, 7, 61.
41. Li, M., Gou, H., Al-Ogaidi, I., & Wu, N. (2013). Nanostructured sensors for detection of
heavy metals: A review. ACS Sustainable Chemical Engineering, 1, 713–723.
42. Kim, H. N., Ren, W. X., Kim, J. S., & Yoon, J. (2012). Fluorescent and colorimetric sensors
for detection of lead, cadmium, and mercury ions. Chemical Society Reviews, 41, 3210–
3244.
43. Chang, J., Zhou, G., Christensen, E. R., Heideman, R., & Chen, J. (2014). Graphene-based
sensors for detection of heavy metals in water: a review. Analytical and Bioanalytical
Chemistry, 406, 3957–3975.
44. Yang, D., et al. (2017). Aptamer-based biosensors for detection of lead(ii) ion: a review.
Analytical Methods, 9, 1976–1990.
45. Li, Y., Chen, Y., Yu, H., Tian, L., & Wang, Z. (2018). Portable and smart devices for
monitoring heavy metal ions integrated with nanomaterials. TrAC—Trends in Analytical
Chemistry, 98, 190–200.
46. Qian, X., & Städler, B. (2019). Recent developments in polydiacetylene-based sensors.
Chemistry of Materials, 31, 1196–1222.
47. Raj, S., & Shankaran, D. R. (2016). Curcumin based biocompatible nanofibers for lead ion
detection. Sensors Actuators, B Chem., 226, 318–325.
48. Li, Y., et al. (2013). Colorimetric sensor strips for lead (II) assay utilizing nanogold probes
immobilized polyamide-6/nitrocellulose nano-fibers/nets. Biosensors & Bioelectronics, 48,
244–250.
49. Li, Y., et al. (2014). Solid-phase pink-to-purple chromatic strips utilizing gold probes and
nanofibrous membranes combined system for lead (II) assaying. Sensors Actuators, B
Chem., 204, 673–681.
50. Zhang, H., et al. (2015). Polyacrylonitrile/noble metal/SiO 2 nanofibers as
substrates for the amplified detection of picomolar amounts of metal ions through
plasmon-enhanced fluorescence. Nanoscale, 7, 1374–1382.
51. Pérez-Ràfols, C., Serrano, N., Díaz-Cruz, J. M., Ariño, C., & Esteban, M. (2016).
Glutathione modified screen-printed carbon nanofiber electrode for the voltammetric
determination of metal ions in natural samples. Talanta, 155, 8–13.
316
A. K. Srivastava et al.
Nature Genetics, 39(9), 1068.
32. Cui, L., Wu, J., & Ju, H. (2015). Electrochemical sensing of heavy metal ions with
inorganic, organic and bio-materials. Biosensors & Bioelectronics, 63, 276–286.
33. Barton, J., et al. (2016). Screen-printed electrodes for environmental monitoring of heavy
metal ions: a review. Microchimica Acta, 183, 503–517.
34. Quang, D. T., & Kim, J. S. (2010). Fluoro- and Chromogenic Chemodosimeters for heavy
metal ion detection in solution and biospecimens. Chemical Reviews, 110, 6280–6301.
35. Gumpu, M. B., Sethuraman, S., Krishnan, U. M., & Rayappan, J. B. B. (2015). A review on
detection of heavy metal ions in water An electrochemical approach. Sensors Actuators, B
Chemical, 213, 515–533.
36. Lu, Y., et al. (2018). A review of the identification and detection of heavy metal ions in the
environment by voltammetry. Talanta, 178, 324–338.
37. Weiner, E. National recommended water quality criteria. Applications of Environmental
Chemistry (2010). https://doi.org/10.1201/9781420032963.axb
38. Bansod, B. K., Kumar, T., Thakur, R., Rana, S., & Singh, I. (2017). A review on various
electrochemical techniques for heavy metal ions detection with different sensing platforms.
Biosensors & Bioelectronics, 94, 443–455.
39. Verma, R., & Gupta, B. D. (2015). Detection of heavy metal ions in contaminated water by
surface plasmon resonance based optical fibre sensor using conducting polymer and
chitosan. Food Chemistry, 166, 568–575.
40. Terra, I. A. A., Mercante, L. A., Andre, R. S., & Correa, D. S. (2017). Fluorescent and
colorimetric electrospun nanofibers for heavy-metal sensing. Biosensors, 7, 61.
41. Li, M., Gou, H., Al-Ogaidi, I., & Wu, N. (2013). Nanostructured sensors for detection of
heavy metals: A review. ACS Sustainable Chemical Engineering, 1, 713–723.
42. Kim, H. N., Ren, W. X., Kim, J. S., & Yoon, J. (2012). Fluorescent and colorimetric sensors
for detection of lead, cadmium, and mercury ions. Chemical Society Reviews, 41, 3210–
3244.
43. Chang, J., Zhou, G., Christensen, E. R., Heideman, R., & Chen, J. (2014). Graphene-based
sensors for detection of heavy metals in water: a review. Analytical and Bioanalytical
Chemistry, 406, 3957–3975.
44. Yang, D., et al. (2017). Aptamer-based biosensors for detection of lead(ii) ion: a review.
Analytical Methods, 9, 1976–1990.
45. Li, Y., Chen, Y., Yu, H., Tian, L., & Wang, Z. (2018). Portable and smart devices for
monitoring heavy metal ions integrated with nanomaterials. TrAC—Trends in Analytical
Chemistry, 98, 190–200.
46. Qian, X., & Städler, B. (2019). Recent developments in polydiacetylene-based sensors.
Chemistry of Materials, 31, 1196–1222.
47. Raj, S., & Shankaran, D. R. (2016). Curcumin based biocompatible nanofibers for lead ion
detection. Sensors Actuators, B Chem., 226, 318–325.
48. Li, Y., et al. (2013). Colorimetric sensor strips for lead (II) assay utilizing nanogold probes
immobilized polyamide-6/nitrocellulose nano-fibers/nets. Biosensors & Bioelectronics, 48,
244–250.
49. Li, Y., et al. (2014). Solid-phase pink-to-purple chromatic strips utilizing gold probes and
nanofibrous membranes combined system for lead (II) assaying. Sensors Actuators, B
Chem., 204, 673–681.
50. Zhang, H., et al. (2015). Polyacrylonitrile/noble metal/SiO
substrates for the amplified detection of picomolar amounts of metal ions through
plasmon-enhanced fluorescence. Nanoscale, 7, 1374–1382.
51. Pérez-Ràfols, C., Serrano, N., Díaz-Cruz, J. M., Ariño, C., & Esteban, M. (2016).
Glutathione modified screen-printed carbon nanofiber electrode for the voltammetric
determination of metal ions in natural samples. Talanta, 155, 8–13.
316
A. K. Srivastava et al.
