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Acrylamide polymers with covalently linked zinc(ii)tetraphenylporphyrin groups: synthesis and complexation with amino acids

Natalya Shamil'evna Lebedeva 1
Natalya Shamil'evna Lebedeva
Elena Sergeevna Yurina 1
Elena Sergeevna Yurina
Yury Aleksandrovich Gubarev 1
Yury Aleksandrovich Gubarev
Sergei Aleksandrovich Syrbu 1
Sergei Aleksandrovich Syrbu
Nadezhda Leonidovna Pechnikova 2
Nadezhda Leonidovna Pechnikova
Published 2018-03-01
CommunicationVolume 28, Issue 2, 158-160
3
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Lebedeva N. S. et al. Acrylamide polymers with covalently linked zinc(ii)tetraphenylporphyrin groups: synthesis and complexation with amino acids // Mendeleev Communications. 2018. Vol. 28. No. 2. pp. 158-160.
GOST all authors (up to 50) Copy
Lebedeva N. S., Yurina E. S., Gubarev Y. A., Syrbu S. A., Pechnikova N. L. Acrylamide polymers with covalently linked zinc(ii)tetraphenylporphyrin groups: synthesis and complexation with amino acids // Mendeleev Communications. 2018. Vol. 28. No. 2. pp. 158-160.
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TY - JOUR
DO - 10.1016/j.mencom.2018.03.016
UR - https://mendcomm.colab.ws/publications/10.1016/j.mencom.2018.03.016
TI - Acrylamide polymers with covalently linked zinc(ii)tetraphenylporphyrin groups: synthesis and complexation with amino acids
T2 - Mendeleev Communications
AU - Lebedeva, Natalya Shamil'evna
AU - Yurina, Elena Sergeevna
AU - Gubarev, Yury Aleksandrovich
AU - Syrbu, Sergei Aleksandrovich
AU - Pechnikova, Nadezhda Leonidovna
PY - 2018
DA - 2018/03/01
PB - Mendeleev Communications
SP - 158-160
IS - 2
VL - 28
ER -
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@article{2018_Lebedeva,
author = {Natalya Shamil'evna Lebedeva and Elena Sergeevna Yurina and Yury Aleksandrovich Gubarev and Sergei Aleksandrovich Syrbu and Nadezhda Leonidovna Pechnikova},
title = {Acrylamide polymers with covalently linked zinc(ii)tetraphenylporphyrin groups: synthesis and complexation with amino acids},
journal = {Mendeleev Communications},
year = {2018},
volume = {28},
publisher = {Mendeleev Communications},
month = {Mar},
url = {https://mendcomm.colab.ws/publications/10.1016/j.mencom.2018.03.016},
number = {2},
pages = {158--160},
doi = {10.1016/j.mencom.2018.03.016}
}
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Lebedeva, Natalya Shamil'evna, et al. “Acrylamide polymers with covalently linked zinc(ii)tetraphenylporphyrin groups: synthesis and complexation with amino acids.” Mendeleev Communications, vol. 28, no. 2, Mar. 2018, pp. 158-160. https://mendcomm.colab.ws/publications/10.1016/j.mencom.2018.03.016.

Abstract

New copolymers of acrylamide with zinc 5,10,15,20-tetrakis-(4-allyloxyphenyl)porphyrinate were synthesized and tested as cysteine and histidine sensors.

References

1.
Plasma Homocysteine as a Risk Factor for Dementia and Alzheimer's Disease
Seshadri S., Beiser A., Selhub J., Jacques P.F., Rosenberg I.H., D'Agostino R.B., Wilson P.W., Wolf P.A.
New England Journal of Medicine, 2002
2.
Adsorptive and electrochemical behaviors of estradiol valerate at a mercury electrode
Duan J.P., Chen H.Q., Chen G.N., Chen M.L., Ping Wu X.
The Analyst, 1999
3.
Guidelines for the use and interpretation of assays for monitoring autophagy (3rd edition)
Klionsky D.J., Abdelmohsen K., Abe A., Abedin M.J., Abeliovich H., Acevedo Arozena A., Adachi H., Adams C.M., Adams P.D., Adeli K., Adhihetty P.J., Adler S.G., Agam G., Agarwal R., Aghi M.K., et. al.
Autophagy, 2016
6.
10.1016/j.mencom.2018.03.016_bib0030
Burtis
Tietz Fundamentals of Clinical Chemistry and Molecular Diagnostics, 2014
7.
Cysteine-induced hypoglycemic brain damage: an alternative mechanism to excitotoxicity
Gazit V., Ben-Abraham R., Coleman R., Weizman A., Katz Y.
Amino Acids, 2004
8.
Consequences of low plasma histidine in chronic kidney disease patients: associations with inflammation, oxidative stress, and mortality
Watanabe M., Suliman M.E., Qureshi A.R., Garcia-Lopez E., Bárány P., Heimbürger O., Stenvinkel P., Lindholm B.
American Journal of Clinical Nutrition, 2008
15.
Optical pH Meter by Means of a Porphyrin Monolayer Covalently Assembled on a Molecularly Engineered Silica Surface
Gulino A., Mineo P., Bazzano S., Vitalini D., Fragalà I.
Chemistry of Materials, 2005
19.
Synthesis and Photocatalytic Properties of Mixed Polyoxometalate−Porphyrin Copolymers Obtained from Anderson-Type Polyoxomolybdates
Schaming D., Allain C., Farha R., Goldmann M., Lobstein S., Giraudeau A., Hasenknopf B., Ruhlmann L.
Langmuir, 2009
22.
Effect of molecular complex formation of metallophthalocyanines with pyridine on their aggregation
Lebedeva N.S., Pavlycheva N.A., Petrova O.V., Parfenyuk E.V.
Journal of Porphyrins and Phthalocyanines, 2009
23.
Photophysical properties and intracellular imaging of water-soluble porphyrin dimers for two-photon excited photodynamic therapy
Kuimova M.K., Collins H.A., Balaz M., Dahlstedt E., Levitt J.A., Sergent N., Suhling K., Drobizhev M., Makarov N.S., Rebane A., Anderson H.L., Phillips D.
Organic and Biomolecular Chemistry, 2009