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Impacts of Unregulated Novel Brominated Flame Retardants on Human Liver Thyroid Deiodination and Sulfotransferation.

Publication ,  Journal Article
Smythe, TA; Butt, CM; Stapleton, HM; Pleskach, K; Ratnayake, G; Song, CY; Riddell, N; Konstantinov, A; Tomy, GT
Published in: Environmental science & technology
June 2017

The inhibitory effects of five novel brominated flame retardants, 1,2-bis(2,4,5-tribromophenoxy)ethane (BTBPE), decabromodiphenylethane (DBDPE), 2-ethylhexyl-2,3,4,5-tetrabromobenzoate (EH-TBB), bis(2-ethylhexyl)tetrabromophthalate (BEH-TEBP), and β-tetrabromoethylcyclohexane (β-TBECH), on thyroid hormone deiodinase (DIO) and sulfotransferase (SULT) activity were investigated using human in vitro liver microsomal and cytosolic bioassays. Enzymatic activity was measured by incubating active human liver subcellular fractions with thyroid hormones (T4 and rT3 separately) and measuring changes in thyroid hormone (T4, T3, rT3, and 3,3'-T2) concentrations. Only DBDPE showed inhibition of both outer and inner ring deiodination (O and IRD) of T3 and 3,3'-T2 formation from T4, respectively, with an estimated IC50 of 160 nM; no statistically significant inhibition of SULT activity was observed. ORD inhibition of 3,3'-T2 formation from rT3 was also observed (IC50 ∼ 100 nM). The kinetics of T4 O and IRD were also investigated, although a definitive mechanism could not be identified as the Michaelis-Menten parameters and maximal rate constants were not significantly different. Concentrations tested were intentionally above expected environmental levels, and this study suggests that these NBFRs are not potent human liver DIO and SULT inhibitors. To our knowledge, DBDPE is the first example of a nonhydroxylated contaminant inhibiting DIO activity, and further study of the mechanism of action is warranted.

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Published In

Environmental science & technology

DOI

EISSN

1520-5851

ISSN

0013-936X

Publication Date

June 2017

Volume

51

Issue

12

Start / End Page

7245 / 7253

Related Subject Headings

  • Thyroid Hormones
  • Thyroid Gland
  • Liver
  • Iodide Peroxidase
  • Humans
  • Flame Retardants
  • Environmental Sciences
 

Citation

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Smythe, T. A., Butt, C. M., Stapleton, H. M., Pleskach, K., Ratnayake, G., Song, C. Y., … Tomy, G. T. (2017). Impacts of Unregulated Novel Brominated Flame Retardants on Human Liver Thyroid Deiodination and Sulfotransferation. Environmental Science & Technology, 51(12), 7245–7253. https://doi.org/10.1021/acs.est.7b01143
Smythe, Tristan A., Craig M. Butt, Heather M. Stapleton, Kerri Pleskach, Geemitha Ratnayake, Chae Yoon Song, Nicole Riddell, Alex Konstantinov, and Gregg T. Tomy. “Impacts of Unregulated Novel Brominated Flame Retardants on Human Liver Thyroid Deiodination and Sulfotransferation.Environmental Science & Technology 51, no. 12 (June 2017): 7245–53. https://doi.org/10.1021/acs.est.7b01143.
Smythe TA, Butt CM, Stapleton HM, Pleskach K, Ratnayake G, Song CY, et al. Impacts of Unregulated Novel Brominated Flame Retardants on Human Liver Thyroid Deiodination and Sulfotransferation. Environmental science & technology. 2017 Jun;51(12):7245–53.
Smythe, Tristan A., et al. “Impacts of Unregulated Novel Brominated Flame Retardants on Human Liver Thyroid Deiodination and Sulfotransferation.Environmental Science & Technology, vol. 51, no. 12, June 2017, pp. 7245–53. Epmc, doi:10.1021/acs.est.7b01143.
Smythe TA, Butt CM, Stapleton HM, Pleskach K, Ratnayake G, Song CY, Riddell N, Konstantinov A, Tomy GT. Impacts of Unregulated Novel Brominated Flame Retardants on Human Liver Thyroid Deiodination and Sulfotransferation. Environmental science & technology. 2017 Jun;51(12):7245–7253.
Journal cover image

Published In

Environmental science & technology

DOI

EISSN

1520-5851

ISSN

0013-936X

Publication Date

June 2017

Volume

51

Issue

12

Start / End Page

7245 / 7253

Related Subject Headings

  • Thyroid Hormones
  • Thyroid Gland
  • Liver
  • Iodide Peroxidase
  • Humans
  • Flame Retardants
  • Environmental Sciences