Differences in DNA condensation and release by lysine and arginine homopeptides govern their DNA delivery efficiencies

Anita Mann, Garima Thakur, Vasundhara Shukla, Anand Kamal Singh, Richa Khanduri, Rangeetha Naik, Yang Jiang, Namita Kalra, B. S. Dwarakanath, Ulo Langel, Munia Ganguli

Research output: Contribution to journalArticlepeer-review

67 Scopus citations

Abstract

Designing of nanocarriers that can efficiently deliver therapeutic DNA payload and allow its smooth intracellular release for transgene expression is still a major constraint. The optimization of DNA nanocarriers requires thorough understanding of the chemical and structural characteristics of the vector-nucleic acid complexes and its correlation with the cellular entry, intracellular state and transfection efficiency. L-Lysine and L-arginine based cationic peptides alone or in conjugation with other vectors are known to be putative DNA delivery agents. Here we have used l-lysine and L-arginine homopeptides of three different lengths and probed their DNA condensation and release properties by using a multitude of biophysical techniques including fluorescence spectroscopy, gel electrophoresis and atomic force microscopy. Our results clearly showed that although both lysine and arginine based homopeptides condense DNA via electrostatic interactions, they follow different pattern of DNA condensation and release in vitro. While lysine homopeptides condense DNA to form both monomolecular and multimolecular complexes and show differential release of DNA in vitro depending on the peptide length, arginine homopeptides predominantly form multimolecular complexes and show complete DNA release for all peptide lengths. The cellular uptake of the complexes and their intracellular state (as observed through flow cytometry and fluorescence microscopy) seem to be controlled by the peptide chemistry. The difference in the transfection efficiency of lysine and arginine homopeptides has been rationalized in light of these observations.

Original languageEnglish (US)
Pages (from-to)1729-1741
Number of pages13
JournalMolecular Pharmaceutics
Volume8
Issue number5
DOIs
StatePublished - Oct 3 2011
Externally publishedYes

Keywords

  • atomic forcemicroscopy
  • cationic peptides
  • condensation-release balance
  • DNA condensation
  • nonviral gene delivery
  • structure-activity correlation

ASJC Scopus subject areas

  • Molecular Medicine
  • Pharmaceutical Science
  • Drug Discovery

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