COMPLEXATION OF DNA WITH CATIONIC POLYMERS

Authors

  • Alexandra FARCAȘ Faculty of Physics, Babeş-Bolyai University; National Institute for Research and Development of Isotopic and Molecular Technologies, Cluj-Napoca, Romania. Email: farcasalexa@yahoo.com. https://orcid.org/0000-0001-9972-9376
  • Titus Adrian BEU National Institute for Research and Development of Isotopic and Molecular Technologies, Cluj-Napoca, Romania. Email: titus.beu@ubbcluj.ro. https://orcid.org/0000-0002-2924-8988

DOI:

https://doi.org/10.24193/subbchem.2018.2.15

Keywords:

polyethlenimine, cationic polymers, molecular dynamics simulations, PEI/DNA polyplexes, gene delivery systems

Abstract

Polyethylenimine (PEI) represents the most extensively used non-viral vector for gene delivery. The complexation between nucleic acids and PEI chains is intimately related to electrostatic interactions of the positively charged amine groups with the negatively charged phosphate groups. All-atom molecular dynamics simulations of alternatively protonated PEI chains, DNA and, respectively, polyplexes thereof in solution were performed. Our results reveal an increase in gyration radius of solvated PEI chains in the presence of DNA. To understand the major changes in DNA properties, the impact of PEI chains on the ionic environment of DNA is described in detail. In addition, the amine-phosphate contact analysis provides valuable insight into the formation mechanism of PEI/DNA complexes.

References

S. Y. Wong, J. M. Pelet, and D. Putnam, Progress in Polymer Science, 2007, 32, 799.

C. P. Lollo, M. G. Banaszczyk, and H. C. Chiou, Current opinion in molecular therapeutics, 2000, 2, 136.

Y. Zhang, A. Satterlee, and L. Huang, Molecular Therapy, 2012, 20, 1298.

K. Utsuno, H. Uludag, Biophysical Journal, 2010, 99, 201.

J. D. Ziebarth, Y. Wang, Biomacromolecules, 2010, 11, 29.

C. B. Sun, T. Tang, H. Uludag, and J. E. Cuervo, Biophysical Journal, 2011, 100, 2754.

J. D. Ziebarth, D. Kennetz, N. J. Walker, Y. Wang, The Journal of Physical Chemistry B, 2017, 121(8), 1941.

J. Wang, P. Cieplak, P. A. Kollman, Journal of Computational Chemistry, 2000, 25, 1049.

D. A. Case, J. T. Berryman, R. M. Betz, D. S. Cerutti, T. E. Cheatham III, T.A. Darden, R.E. Duke, T.J. Giese, H. Gohlke, A.W. Goetz, N. Homeyer, S. Izadi, P. Janowski, J. Kaus, A. Kovalenko, T. S. Lee, S. LeGrand, P. Li, T. Luchko, R. Luo, B. Madej, K. M. Merz, G. Monard, P. Needham, H. Nguyen, H. T. Nguyen, I. Omelyan, A. Onufriev, D. R. Roe, A. Roitberg, R. Salomon-Ferrer, C. L. Simmerling, W. Smith, J. Swails, R. C. Walker, J. Wang, R. M. Wolf, X. Wu, D. M. York, and P. A. Kollman, AMBER 2015, University of California, San Francisco, 2015.

W. Humphrey, A. Dalke, and K. Schulten, Journal of Molecular Graphics, 1996, 14, 33.

J. C. Phillips, R. Braun, W. Wang, J. Gumbart, E. Tajkhorshid, E. Villa, C. Chipot, R. D. Skeel, L. Kale, and K. Schulten, Journal of Computational Chemistry, 2005, 26, 1781.

Foloppe N., MacKerell A. D., Journal of Computational Chemistry, 2000, 21, 86.

Denning E. J., Priyakumar U. D., Nilsson L., Mackerell A. D., Journal of Computational Chemistry, 2011, 32, 1929.

T. A. Beu, A. Farcas, Journal of Computational Chemistry, 2017, 38(27), 2335.

J. P. Ryckaert, G. Ciccotti, H. J. C. Berendsen., Journal of Computational Physics, 1977, 23, 327.

S. Miyamoto, P. A. Kollman, Journal of Computational Chemistry, 1992, 13, 952.

U. Essmann, L. Perera, M. L. Berkowitz, T. Darden, H. Lee, and L. G. Pedersen, The Journal of Chemical Physics, 1995, 103, 8577.

T.A. Beu, A. Farcaş, AIP Conference Proceedings, 2017, 1916, UNSP 020001.

Downloads

Published

2018-06-29

How to Cite

FARCAȘ, A. ., & BEU, T. A. . (2018). COMPLEXATION OF DNA WITH CATIONIC POLYMERS. Studia Universitatis Babeș-Bolyai Chemia, 63(2), 165–172. https://doi.org/10.24193/subbchem.2018.2.15

Issue

Section

Articles

Similar Articles

1 2 3 4 5 6 7 8 9 10 > >> 

You may also start an advanced similarity search for this article.