References
- M.V. Maffini, B.S. Rubin, C. Sonnenschein, A.M. Soto, Endocrine
disruptors and reproductive health: the case of bisphenol A,
Mol. Cell. Endocrinol., 254–255 (2006) 179–186.
- C. Erler, J. Novak, Bisphenol A exposure: human risk and health
policy, J. Pediatr. Nurs., 25 (2010) 400–407.
- J.P. Sumpter, S. Jobling, Vitellogenesis as a biomarker for
estrogenic contamination of the aquatic environment, Environ.
Health Perspect., 103 (1995) 173–178.
- J.-h. Zhang, M. Jiang, L. Zou, D. Shi, S.-r. Mei, Y.-x. Zhu, Y. Shi,
K. Dai, B. Lu, Selective solid-phase extraction of bisphenol A
using molecularly imprinted polymers and its application
to biological and environmental samples, Anal. Bioanal.
Chem., 385 (2006) 780–786.
- D.K. Alexiadou, N.C. Maragou, N.S. Thomaidis,
G.A. Theodoridis, M.A. Koupparis, Molecularly imprinted
polymers for bisphenol A for HPLC and SPE from water and
milk, J. Sep. Sci., 31 (2008) 2272–2282.
- Y. Watabe, K. Hosoya, N. Tanaka, T. Kondo, M. Morita,
T. Kubo, LC/MS determination of bisphenol A in river water
using a surface-modified molecularly-imprinted polymer as an
on-line pretreatment device, Anal. Bioanal. Chem., 381 (2005)
1193–1198.
- E. Yiantzi, E. Psillakis, K. Tyrovola, N. Kalogerakis, Vortexassisted
ionic liquid based liquid-liquid microextraction of
selected pesticides from a manufacturing wastewater sample,
Talanta, 80 (2010) 2057–2062.
- S.N. Loganathan, K. Kannan, Green tea potentially ameliorates
bisphenol A-induced oxidative stress: an in vitro and in silico
study, Arch. Environ. Contamin. Toxicol., 61 (2011) 68–73.
- A. Guerreiro, A. Soares, E. Piletska, B. Mattiasson, S. Piletsky,
Preliminary evaluation of new polymer matrix for solid-phase
extraction of nonylphenol from water samples, Anal. Chim.
Acta, 612 (2008) 99–104.
- S. Basak, M.K. Das, A.K. Duttaroy, Plastics derived endocrinedisrupting
compounds and their effects on early development,
Birth Defects Res., 112 (2020) 1308–1325.
- F. Gorini, E. Bustaffa, A. Coi, G. Iervasi, F. Bianchi, Bisphenols
as environmental triggers of thyroid dysfunction: clues and
evidence, Int. J. Environ. Res. Public Health, 17 (2020) 2654, doi:
10.3390/ijerph17082654.
- I. Jordáková, J. Dobiáš, M. Voldřich, J. Poustka, Sensitive online
SPE determination of bisphenol A in water samples, Czech J.
Food Sci., 21 (2003) 85–90.
- S. Sifakis, V.P. Androutsopoulos, A.M. Tsatsakis, D.A. Spandidos,
Human exposure to endocrine disrupting chemicals: effects on
the male and female reproductive systems, Environ. Toxicol.
Pharmacol., 51 (2017) 56–70.
- T.K.A. Tran, R.M.K. Yu, R. Islam, T.H.T. Nguyen, T.L.H. Bui,
R.Y.C. Kong, W.A. O’Connor, F.D.L. Leusch,
M. Andrew-Priestley, G.R. MacFarlane, The utility of vitellogenin as a
biomarker of estrogenic endocrine disrupting chemicals in
molluscs, Environ. Pollut., 248 (2019) 1067–1078.
- G.-G. Ying, B. Williams, R. Kookana, Environmental fate of
alkylphenols and alkylphenol ethoxylates—a review, Environ.
Int., 28 (2002) 215–226.
- N. Szczepańska, M. Rutkowska, K. Owczarek, J. Płotka-Wasylka, J. Namieśnik, Main complications connected with
detection, identification and determination of trace organic
constituents in complex matrix samples, TrAC, Trends Anal.
Chem., 105 (2018) 173–184.
- N. Salgueiro-González, S. Muniategui-Lorenzo, P. López-Mahía, D. Prada-Rodríguez, Trends in analytical methodologies
for the determination of alkylphenols and bisphenol A in
water samples, Anal. Chim. Acta, 962 (2017) 1–14.
- M. Mościpan, P.P. Wieczorek, Extraction techniques for
isolation, purification and preconcentration of bisphenols and
alkylphenols from environmental and food samples, Int. J. Adv.
Res. Chem. Sci. (IJARCS), 4 (2017) 1–23.
- E. Herrero-Hernández, R. Carabias-Martínez, E. Rodríguez-Gonzalo, Use of a bisphenol A imprinted polymer as a selective
sorbent for the determination of phenols and phenoxyacids in
honey by liquid chromatography with diode array and tandem
mass spectrometric detection, Anal. Chim. Acta, 650 (2009)
195–201.
- A. Kubiak, M. Biesaga, Application of molecularly imprinted
polymers for bisphenols extraction from food samples –
a review, Crit. Rev. Anal. Chem., 50 (2020) 311–321.
- M. Kawaguchi, Y. Hayatsu, H. Nakata, Y. Ishii, R. Ito, K. Saito,
H. Nakazawa, Molecularly imprinted monolith in-tube solidphase
microextraction coupled with HPLC/UV detection for
determination of 8-hydroxy-2′-deoxyguanosine in urine, Anal.
Chim. Acta, 539 (2005) 83–89.
- F. Navarro-Villoslada, B.S. Vicente, M.C. Moreno-Bondi,
Application of multivariate analysis to the screening of
molecularly imprinted polymers for bisphenol A, Anal. Chim.
Acta, 504 (2004) 149–162.
- Ch. A. Staples, P.B. Dorn, G.M. Klecka, S.T. O’Block, L.R. Harris,
A review of the environmental fate, effects and exposures of
bisphenol A, Chemosphere, 36 (1998) 2149–2173.
- P.B. Dorn, Ch.-S. Chou, J.J. Gentempo, Degradation of bisphenol
A in natural waters, Chemosphere, 16 (1987) 1501–1507.
- http://www.hc-sc.gc.ca/cps-spc/pest/part/consultations/_
prvd2008–04/index-eng.php
- A. Lattore, S. Lacorte, D. Barceló, Presence of nonylphenol,
octyphenol and bisphenol A in two aquifers close to
agricultural, industrial and urban areas, Chromatographia,
57 (2003) 111–116.
- A. Poliwoda, M. Mościpan, P.P. Wieczorek, Application of
molecular imprinted polymers for selective solid-phase
extraction of bisphenol A, Ecol. Chem. Eng. S, 23 (2016) 651–664.