Rational design of a cytotoxic dinuclear Cu2 complex that binds by molecular recognition at two neighboring phosphates of the DNA backbone

Jany T, Moreth A, Gruschka C, Sischka A, Spiering A, Dieding M, Wang Y, Samo SH, Stammler A, Bögge H, Fischer von Mollard G, et al. (2015)
Inorganic chemistry 54(6): 2679-2690.

Zeitschriftenaufsatz | Veröffentlicht | Englisch
 
Download
Es wurden keine Dateien hochgeladen. Nur Publikationsnachweis!
Abstract / Bemerkung
The mechanism of the cytotoxic function of cisplatin and related anticancer drugs is based on their binding to the nucleobases of DNA. The development of new classes of anticancer drugs requires establishing other binding modes. Therefore, we performed a rational design for complexes that target two neighboring phosphates of the DNA backbone by molecular recognition resulting in a family of dinuclear complexes based on 2,7-disubstituted 1,8-naphthalenediol. This rigid backbone preorganizes the two metal ions for molecular recognition at the distance of two neighboring phosphates in DNA of 6-7 Å. Additionally, bulky chelating pendant arms in the 2,7-position impede nucleobase complexation by steric hindrance. We successfully synthesized the Cu(II)2 complex of the designed family of dinuclear complexes and studied its binding to dsDNA by independent ensemble and single-molecule methods like gel electrophoresis, precipitation, and titration experiments followed by UV-vis spectroscopy, atomic force microscopy (AFM), as well as optical tweezers (OT) and magnetic tweezers (MT) DNA stretching. The observed irreversible binding of our dinuclear Cu(II)2 complex to dsDNA leads to a blocking of DNA synthesis as studied by polymerase chain reactions and cytotoxicity for human cancer cells.
Erscheinungsjahr
2015
Zeitschriftentitel
Inorganic chemistry
Band
54
Ausgabe
6
Seite(n)
2679-2690
ISSN
1520-510X
Page URI
https://pub.uni-bielefeld.de/record/2730581

Zitieren

Jany T, Moreth A, Gruschka C, et al. Rational design of a cytotoxic dinuclear Cu2 complex that binds by molecular recognition at two neighboring phosphates of the DNA backbone. Inorganic chemistry. 2015;54(6):2679-2690.
Jany, T., Moreth, A., Gruschka, C., Sischka, A., Spiering, A., Dieding, M., Wang, Y., et al. (2015). Rational design of a cytotoxic dinuclear Cu2 complex that binds by molecular recognition at two neighboring phosphates of the DNA backbone. Inorganic chemistry, 54(6), 2679-2690. doi:10.1021/ic5028465
Jany, Thomas, Moreth, Alexander, Gruschka, Claudia, Sischka, Andy, Spiering, André, Dieding, Mareike, Wang, Ying, et al. 2015. “Rational design of a cytotoxic dinuclear Cu2 complex that binds by molecular recognition at two neighboring phosphates of the DNA backbone”. Inorganic chemistry 54 (6): 2679-2690.
Jany, T., Moreth, A., Gruschka, C., Sischka, A., Spiering, A., Dieding, M., Wang, Y., Samo, S. H., Stammler, A., Bögge, H., et al. (2015). Rational design of a cytotoxic dinuclear Cu2 complex that binds by molecular recognition at two neighboring phosphates of the DNA backbone. Inorganic chemistry 54, 2679-2690.
Jany, T., et al., 2015. Rational design of a cytotoxic dinuclear Cu2 complex that binds by molecular recognition at two neighboring phosphates of the DNA backbone. Inorganic chemistry, 54(6), p 2679-2690.
T. Jany, et al., “Rational design of a cytotoxic dinuclear Cu2 complex that binds by molecular recognition at two neighboring phosphates of the DNA backbone”, Inorganic chemistry, vol. 54, 2015, pp. 2679-2690.
Jany, T., Moreth, A., Gruschka, C., Sischka, A., Spiering, A., Dieding, M., Wang, Y., Samo, S.H., Stammler, A., Bögge, H., Fischer von Mollard, G., Anselmetti, D., Glaser, T.: Rational design of a cytotoxic dinuclear Cu2 complex that binds by molecular recognition at two neighboring phosphates of the DNA backbone. Inorganic chemistry. 54, 2679-2690 (2015).
Jany, Thomas, Moreth, Alexander, Gruschka, Claudia, Sischka, Andy, Spiering, André, Dieding, Mareike, Wang, Ying, Samo, Susan Haji, Stammler, Anja, Bögge, Hartmut, Fischer von Mollard, Gabriele, Anselmetti, Dario, and Glaser, Thorsten. “Rational design of a cytotoxic dinuclear Cu2 complex that binds by molecular recognition at two neighboring phosphates of the DNA backbone”. Inorganic chemistry 54.6 (2015): 2679-2690.

7 Zitationen in Europe PMC

Daten bereitgestellt von Europe PubMed Central.

Cancer Cells Treated by Clusters of Copper Oxide Doped Calcium Silicate.
Mabrouk M, Kenawy SH, El-Bassyouni GE, Ibrahim Soliman AAE, Aly Hamzawy EM., Adv Pharm Bull 9(1), 2019
PMID: 31011564
A new surfactant-copper(ii) complex based on 1,4-diazabicyclo[2.2.2]octane amphiphile. Crystal structure determination, self-assembly and functional activity.
Zhiltsova EP, Pashirova TN, Ibatullina MR, Lukashenko SS, Gubaidullin AT, Islamov DR, Kataeva ON, Kutyreva MP, Zakharova LY., Phys Chem Chem Phys 20(18), 2018
PMID: 29697123
Binding mechanism of anti-cancer chemotherapeutic drug mitoxantrone to DNA characterized by magnetic tweezers.
Kreft D, Wang Y, Rattay M, Toensing K, Anselmetti D., J Nanobiotechnology 16(1), 2018
PMID: 30005668
Synthesis of copper and zinc 2-(pyridin-2-yl)imidazo[1,2-a]pyridine complexes and their potential anticancer activity.
Dam J, Ismail Z, Kurebwa T, Gangat N, Harmse L, Marques HM, Lemmerer A, Bode ML, de Koning CB., Eur J Med Chem 126(), 2017
PMID: 27907874
Binding mechanism of PicoGreen to DNA characterized by magnetic tweezers and fluorescence spectroscopy.
Wang Y, Schellenberg H, Walhorn V, Toensing K, Anselmetti D., Eur Biophys J 46(6), 2017
PMID: 28251265
Anticancer activity of a series of copper(II) complexes with tripodal ligands.
Jopp M, Becker J, Becker S, Miska A, Gandin V, Marzano C, Schindler S., Eur J Med Chem 132(), 2017
PMID: 28371639
Targeting copper in cancer therapy: 'Copper That Cancer'.
Denoyer D, Masaldan S, La Fontaine S, Cater MA., Metallomics 7(11), 2015
PMID: 26313539

References

Daten bereitgestellt von Europe PubMed Central.

Export

Markieren/ Markierung löschen
Markierte Publikationen

Open Data PUB

Web of Science

Dieser Datensatz im Web of Science®
Quellen

PMID: 25650993
PubMed | Europe PMC

Suchen in

Google Scholar