105
Chianella, I., Guerreiro, A., Moczko, E., Caygill, J. S., Piletska, E. V., De Vargas Sansalvador, I. M.
P., Whitcombe, M. J., & Piletsky, S. A. (2013). Direct replacement of antibodies with molecularly imprinted polymer nanoparticles in ELISA-development of a novel assay for vancomycin.
Analytical Chemistry, 85(17), 8462–8468. https://doi.org/10.1021/ac402102j.
Chiefari, J., Chong, Y. K., Ercole, F., Krstina, J., Jeffery, J., Le, T. P. T., Mayadunne, R. T. A.,
Meijs, G. F., Moad, C. L., Moad, G., Rizzardo, E., & Thang, S. H. (1998). Living free- radical
polymerization by reversible addition-fragmentation chain transfer: The RAFT process.
Macromolecules, 31(16), 5559–5562. https://doi.org/10.1021/ma9804951.
Chong, B. Y. K., Krstina, J., Le, T. P. T., Moad, G., Postma, A., Rizzardo, E., & Thang, S. H.
(2003). Thiocarbonylthio compounds [S=C(Ph)S-R] in free radical polymerization with reversible addition-fragmentation chain transfer (RAFT polymerization). Role of the free-radical
leaving group (R). Macromolecules, 36(7), 2256–2272. https://doi.org/10.1021/ma020882h.
Cormack, P. A. G., & Mehamod, F. S. (2013). Molecularly imprinted polymer synthesis using
RAFT polymerisation. Sains Malaysiana, 42(4), 529–535.
Cowieson, D., Piletska, E., Moczko, E., & Piletsky, S. (2013). Grafting of molecularly imprinted
polymer to porous polyethylene filtration membranes by plasma polymerization. Analytical and
Bioanalytical Chemistry, 405(20), 6489–6496. https://doi.org/10.1007/s00216-013-7087-7.
De Middeleer, G., Dubruel, P., & De Saeger, S. (2016). Characterization of MIP and MIP functionalized surfaces: Current state-of-the-art. TrAC, Trends in Analytical Chemistry, 76, 71–85.
https://doi.org/10.1016/j.trac.2015.11.007.
Demir, B., Lemberger, M. M., Panagiotopoulou, M., Medina Rangel, P. X., Timur, S., Hirsch, T.,
Tse Sum Bui, B., Wegener, J., & Haupt, K. (2018). Tracking hyaluronan: Molecularly imprinted
polymer coated carbon dots for cancer cell targeting and imaging. ACS Applied Materials &
Interfaces, 10(4), 3305–3313. https://doi.org/10.1021/acsami.7b16225.
Deng, C., Zhong, Y., He, Y., Ge, Y., & Song, G. (2016). Selective determination of trace bisphenol a
using molecularly imprinted silica nanoparticles containing quenchable fluorescent silver nanoclusters. Microchimica Acta, 183(1), 431–439. https://doi.org/10.1007/s00604-015-1662-x.
Des Azevedo, S., Lakshmi, D., Chianella, I., Whitcombe, M. J., Karim, K., Ivanova-Mitseva,
P. K., Subrahmanyam, S., & Piletsky, S. A. (2013). Molecularly imprinted polymer-hybrid
electrochemical sensor for the detection of β-estradiol. Industrial and Engineering Chemistry
Research, 52(39), 13917–13923. https://doi.org/10.1021/ie302999j.
DiPasquale, S. A., & Byrne, M. E. (2016). Controlled architecture for improved macromolecular
memory within polymer networks. Current Opinion in Biotechnology, 40, 170–176. https://doi.
org/10.1016/j.copbio.2016.06.001.
Dong, Y., Yu, P., Sun, Q., Lu, Y., Tan, Z., & Yu, X. (2018). Grafting of MIPs from PVDF membranes via reversible addition-fragmentation chain transfer polymerization for selective
removal of p-hydroxybenzoic acid. Chemical Research in Chinese Universities, 34(6), 1051–
1057. https://doi.org/10.1007/s40242-018-8146-6.
Dvorakova, G., Haschick, R., Chiad, K., Klapper, M., Müllen, K., & Biffis, A. (2010). Molecularly
imprinted nanospheres by nonaqueous emulsion polymerization. Macromolecular Rapid
Communications, 31(23), 2035–2040. https://doi.org/10.1002/marc.201000406.
Edeleva, M., Morozov, D., Parkhomenko, D., Polienko, Y., Iurchenkova, A., Kirilyuk, I., &
Bagryanskaya, E. (2019). Versatile approach to activation of alkoxyamine homolysis by
1,3-dipolar cycloaddition for efficient and safe nitroxide mediated polymerization. Chemical
Communications, 55(2), 190–193. https://doi.org/10.1039/c8cc08541b.
Ekpenyong-Akiba, A. E., Canfarotta, F., Abd, H. B., Poblocka, M., Casulleras, M., CastillaVallmanya, L., Kocsis-Fodor, G., Kelly, M. E., Janus, J., Althubiti, M., Piletska, E., Piletsky,
S., & Macip, S. (2019). Detecting and targeting senescent cells using molecularly imprinted
nanoparticles. Nanoscale Horizons, 4(3), 757–768. https://doi.org/10.1039/c8nh00473k.
Esfandyari-Manesh, M., Javanbakht, M., Atyabi, F., Badiei, A., & Dinarvand, R. (2011). Effect of
porogenic solvent on the morphology, recognition and release properties of carbamazepinemolecularly imprinted polymer nanospheres. Journal of Applied Polymer Science, 121(2),
1118–1126. https://doi.org/10.1002/app.33812.
5 Plastic Receptors Developed by Imprinting Technology as Smart Polymers Imitating…
Chianella, I., Guerreiro, A., Moczko, E., Caygill, J. S., Piletska, E. V., De Vargas Sansalvador, I. M.
P., Whitcombe, M. J., & Piletsky, S. A. (2013). Direct replacement of antibodies with molecularly imprinted polymer nanoparticles in ELISA-development of a novel assay for vancomycin.
Analytical Chemistry, 85(17), 8462–8468. https://doi.org/10.1021/ac402102j.
Chiefari, J., Chong, Y. K., Ercole, F., Krstina, J., Jeffery, J., Le, T. P. T., Mayadunne, R. T. A.,
Meijs, G. F., Moad, C. L., Moad, G., Rizzardo, E., & Thang, S. H. (1998). Living free- radical
polymerization by reversible addition-fragmentation chain transfer: The RAFT process.
Macromolecules, 31(16), 5559–5562. https://doi.org/10.1021/ma9804951.
Chong, B. Y. K., Krstina, J., Le, T. P. T., Moad, G., Postma, A., Rizzardo, E., & Thang, S. H.
(2003). Thiocarbonylthio compounds [S=C(Ph)S-R] in free radical polymerization with reversible addition-fragmentation chain transfer (RAFT polymerization). Role of the free-radical
leaving group (R). Macromolecules, 36(7), 2256–2272. https://doi.org/10.1021/ma020882h.
Cormack, P. A. G., & Mehamod, F. S. (2013). Molecularly imprinted polymer synthesis using
RAFT polymerisation. Sains Malaysiana, 42(4), 529–535.
Cowieson, D., Piletska, E., Moczko, E., & Piletsky, S. (2013). Grafting of molecularly imprinted
polymer to porous polyethylene filtration membranes by plasma polymerization. Analytical and
Bioanalytical Chemistry, 405(20), 6489–6496. https://doi.org/10.1007/s00216-013-7087-7.
De Middeleer, G., Dubruel, P., & De Saeger, S. (2016). Characterization of MIP and MIP functionalized surfaces: Current state-of-the-art. TrAC, Trends in Analytical Chemistry, 76, 71–85.
https://doi.org/10.1016/j.trac.2015.11.007.
Demir, B., Lemberger, M. M., Panagiotopoulou, M., Medina Rangel, P. X., Timur, S., Hirsch, T.,
Tse Sum Bui, B., Wegener, J., & Haupt, K. (2018). Tracking hyaluronan: Molecularly imprinted
polymer coated carbon dots for cancer cell targeting and imaging. ACS Applied Materials &
Interfaces, 10(4), 3305–3313. https://doi.org/10.1021/acsami.7b16225.
Deng, C., Zhong, Y., He, Y., Ge, Y., & Song, G. (2016). Selective determination of trace bisphenol a
using molecularly imprinted silica nanoparticles containing quenchable fluorescent silver nanoclusters. Microchimica Acta, 183(1), 431–439. https://doi.org/10.1007/s00604-015-1662-x.
Des Azevedo, S., Lakshmi, D., Chianella, I., Whitcombe, M. J., Karim, K., Ivanova-Mitseva,
P. K., Subrahmanyam, S., & Piletsky, S. A. (2013). Molecularly imprinted polymer-hybrid
electrochemical sensor for the detection of β-estradiol. Industrial and Engineering Chemistry
Research, 52(39), 13917–13923. https://doi.org/10.1021/ie302999j.
DiPasquale, S. A., & Byrne, M. E. (2016). Controlled architecture for improved macromolecular
memory within polymer networks. Current Opinion in Biotechnology, 40, 170–176. https://doi.
org/10.1016/j.copbio.2016.06.001.
Dong, Y., Yu, P., Sun, Q., Lu, Y., Tan, Z., & Yu, X. (2018). Grafting of MIPs from PVDF membranes via reversible addition-fragmentation chain transfer polymerization for selective
removal of p-hydroxybenzoic acid. Chemical Research in Chinese Universities, 34(6), 1051–
1057. https://doi.org/10.1007/s40242-018-8146-6.
Dvorakova, G., Haschick, R., Chiad, K., Klapper, M., Müllen, K., & Biffis, A. (2010). Molecularly
imprinted nanospheres by nonaqueous emulsion polymerization. Macromolecular Rapid
Communications, 31(23), 2035–2040. https://doi.org/10.1002/marc.201000406.
Edeleva, M., Morozov, D., Parkhomenko, D., Polienko, Y., Iurchenkova, A., Kirilyuk, I., &
Bagryanskaya, E. (2019). Versatile approach to activation of alkoxyamine homolysis by
1,3-dipolar cycloaddition for efficient and safe nitroxide mediated polymerization. Chemical
Communications, 55(2), 190–193. https://doi.org/10.1039/c8cc08541b.
Ekpenyong-Akiba, A. E., Canfarotta, F., Abd, H. B., Poblocka, M., Casulleras, M., CastillaVallmanya, L., Kocsis-Fodor, G., Kelly, M. E., Janus, J., Althubiti, M., Piletska, E., Piletsky,
S., & Macip, S. (2019). Detecting and targeting senescent cells using molecularly imprinted
nanoparticles. Nanoscale Horizons, 4(3), 757–768. https://doi.org/10.1039/c8nh00473k.
Esfandyari-Manesh, M., Javanbakht, M., Atyabi, F., Badiei, A., & Dinarvand, R. (2011). Effect of
porogenic solvent on the morphology, recognition and release properties of carbamazepinemolecularly imprinted polymer nanospheres. Journal of Applied Polymer Science, 121(2),
1118–1126. https://doi.org/10.1002/app.33812.
5 Plastic Receptors Developed by Imprinting Technology as Smart Polymers Imitating…
