Literature DB >> 30814871

Ultrasound-enhanced gene delivery to alfalfa cells by hPAMAM dendrimer nanoparticles.

Amin Amani1, Nasser Zare1, Asadollah Asadi2, Rasool Asghari-Zakaria1.   

Abstract

Cationic polyamidoamine (PAMAM) dendrimers are highly branched nanoparticles with unique molecular properties, which make them promising nanocarriers for gene delivery into cells. This research evaluated the ability of hyperbranched PAMAM (hPAMAM)-G2 with a diethylenetriamine core to interact with DNA, its protection from ultrasonic damage, and delivery to alfalfa cells. Additionally, the effects of ultrasound on the efficacy of hPAMAM-G2 for the delivery and expression of the gus A gene in the alfalfa cells were investigated. The electrophoresis retardation of plasmid DNA occurred at an N/P ratio (where N is the number of hPAMAM nitrogen atoms and P is the number of DNA phosphorus atoms) of 3 and above, and hPAMAM-G2 dendrimers completely immobilized the DNA at an N/P ratio of 4. The analysis of the DNA dissociated from the dendriplexes revealed a partial protection of the DNA from ultrasound damage at N/P ratios lower than 2, and with increasing N/P ratios, the DNA was better protected. Sonication of the alfalfa cells in the presence of ssDNA-FITC-hPAMAM increased the ssDNA delivery efficiency to 36%, which was significantly higher than that of ssDNA-FITC-hPAMAM without sonication. Additionally, the efficiency of transfection and the expression of the gus A gene were dependent on the N/P ratio and the highest efficiency (1.4%) was achieved at an N/P ratio of 10. The combination of 120 s of ultrasound and hPAMAM-DNA increased the gusA gene transfection and expression to 3.86%.

Entities:  

Keywords:  Gene transfer; Medicago sativa L; hPAMAM-DNA complex; polyamidoamine dendrimers; sonication

Year:  2018        PMID: 30814871      PMCID: PMC6353253          DOI: 10.3906/biy-1706-6

Source DB:  PubMed          Journal:  Turk J Biol        ISSN: 1300-0152


  2 in total

Review 1.  Perspectives on new opportunities for nano-enabled strategies for gene delivery to plants using nanoporous materials.

Authors:  Mohsen Niazian; Ayoub Molaahmad Nalousi; Pejman Azadi; Leila Ma'mani; Stephen F Chandler
Journal:  Planta       Date:  2021-09-24       Impact factor: 4.116

Review 2.  Application of naturally occurring mechanical forces in in vitro plant tissue culture and biotechnology.

Authors:  Judit Dobránszki
Journal:  Plant Signal Behav       Date:  2021-04-27
  2 in total

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