Smart Release Nano-formulation of Cytochrome C and Hyaluronic Acid Induces Apoptosis in Cancer Cells.

C M Figueroa, B N Suárez, A M Molina, J C Fernández, Z Torres, K Griebenow
Author Information
  1. C M Figueroa: Department of Chemistry, University of Puerto Rico, Río Piedras Campus, San Juan, PR 00931, Puerto Rico.
  2. B N Suárez: Department of Chemistry, University of Puerto Rico, Río Piedras Campus, San Juan, PR 00931, Puerto Rico.
  3. A M Molina: Department of Chemistry, University of Puerto Rico, Río Piedras Campus, San Juan, PR 00931, Puerto Rico.
  4. J C Fernández: Department of Chemistry, University of Puerto Rico, Río Piedras Campus, San Juan, PR 00931, Puerto Rico.
  5. Z Torres: Department of Chemistry, University of Puerto Rico, Río Piedras Campus, San Juan, PR 00931, Puerto Rico.
  6. K Griebenow: Department of Chemistry, University of Puerto Rico, Río Piedras Campus, San Juan, PR 00931, Puerto Rico.

Abstract

Herein we tested a nanosized cancer-cell targeted delivery system based on cytochrome c (Cyt c) and Hyaluronic Acid. Cyt c was chosen since it is a non-toxic protein but causes apoptosis when delivered to the cytoplasm of target cells. Hyaluronic Acid was employed to create the nanosized delivery system with passive targeting capability in order to exploit the enhanced permeation and retention (EPR) effect and active targeting capability of Hyaluronic Acid. In addition, our goal was to incorporate a smart release strategy to only promote protein release upon reaching its target. Nanoparticles were formed by a simple yet precise nanoprecipitation process based on desolvation. They were physically characterized to select precipitation conditions leading to adequate size, shape, protein bioactivity, and protein loading to produce a feasible targeted cancer treatment. We synthesized nanoparticles of around 500 nm diameter with a 60% protein loading and more than 80% of protein bioactivity. cumulative release of 92% of Cyt c was observed after 8 h under conditions mimicking the reductive intracellular environment, while under non-denaturing conditions only 20% was released. The nanoparticles displayed a selective cytotoxic effect on cancer cells. After 6 h of incubation with the nanoparticles, Hyaluronic Acid receptor over expressing A549 human lung adenocarcinoma cells showed a viability of ca. 20% at 0.16 mg/ml of Cyt c concentration. Only a negligible effect was observed on viability of COS-7 African green monkey kidney fibroblast, a normal cell line notoverexpressing the Hyaluronic Acid receptor. Confocal microscopy confirmed that the drug delivery system indeed delivered Cyt c to the cytoplasm of the target cells. We conclude that we were able to create a smart stimuli-responsive targeted drug delivery system with significant potential in cancer therapy.

Keywords

References

  1. Int J Pharm. 2003 May 12;257(1-2):169-80 [PMID: 12711172]
  2. AAPS PharmSciTech. 2005 Dec 01;6(4):E594-604 [PMID: 16408861]
  3. Cell Death Differ. 2006 Sep;13(9):1423-33 [PMID: 16676004]
  4. J Am Chem Soc. 2007 Jul 18;129(28):8845-9 [PMID: 17589996]
  5. Int J Pharm. 2008 Jan 22;347(1-2):109-17 [PMID: 17681686]
  6. J Control Release. 2009 Sep 1;138(2):177-84 [PMID: 19446585]
  7. Cancer Sci. 2009 Apr;100(4):572-9 [PMID: 19462526]
  8. J Pharm Sci. 2010 Jun;99(6):2557-75 [PMID: 20049941]
  9. Proc Natl Acad Sci U S A. 2010 Jan 19;107(3):1235-40 [PMID: 20080552]
  10. Adv Drug Deliv Rev. 2011 Mar 18;63(3):131-5 [PMID: 20304019]
  11. Biochim Biophys Acta. 1991 Jun 24;1078(2):231-5 [PMID: 2065090]
  12. Exp Cell Res. 2011 May 15;317(9):1261-9 [PMID: 21371474]
  13. J Vis Exp. 2011 Apr 24;(50):null [PMID: 21540825]
  14. J Drugs Dermatol. 2011 Sep;10(9):990-1000 [PMID: 22052267]
  15. Methods Mol Biol. 2012;899:1-26 [PMID: 22735943]
  16. J Biol Chem. 2012 Dec 14;287(51):43094-107 [PMID: 23118219]
  17. Nano Rev. 2012;3:null [PMID: 23240070]
  18. Results Pharma Sci. 2012;2:79-85 [PMID: 23316451]
  19. Int J Mol Sci. 2013 Jan 14;14(1):1629-54 [PMID: 23344060]
  20. J Drug Deliv. 2013;2013:860780 [PMID: 23533773]
  21. Cold Spring Harb Perspect Biol. 2013 Apr 01;5(4):a008656 [PMID: 23545416]
  22. Mol Pharm. 2014 Jan 6;11(1):102-11 [PMID: 24294910]
  23. Theranostics. 2013 Dec 11;4(1):81-9 [PMID: 24396516]
  24. Biomed Res Int. 2014;2014:180549 [PMID: 24772414]
  25. BMC Biochem. 2014 Aug 06;15:16 [PMID: 25095792]
  26. J Nanobiotechnology. 2014 Sep 02;12:33 [PMID: 25179308]
  27. Chem Soc Rev. 2016 Mar 7;45(5):1457-501 [PMID: 26776487]
  28. J Pharm Sci. 2016 Mar;105(3):1269-76 [PMID: 26886339]
  29. Med Res Rev. 2016 May;36(3):494-575 [PMID: 26992114]
  30. J Nanomed Nanotechnol. 2016 Jun;6(3):null [PMID: 27088048]
  31. Genome Biol. 2016 May 09;17:99 [PMID: 27161042]
  32. J Nanomed Nanotechnol. 2015 Oct;6(5):null [PMID: 27182458]
  33. Macromolecules. 2013 Dec 10;46(23):9169-9180 [PMID: 28804160]
  34. Cancer Res. 1986 Dec;46(12 Pt 1):6387-92 [PMID: 2946403]

Grants

  1. P20 GM103642/NIGMS NIH HHS
  2. R25 GM061151/NIGMS NIH HHS
  3. T34 GM007821/NIGMS NIH HHS

Word Cloud

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