Anchoring Property of a Novel Hydrophilic Lipopolymer, HDAS-SHP, Post-Inserted in Preformed Liposomes.

Nanomaterials (Basel)

Department of Pharmaceutical Sciences, College of Pharmacy, University of Oklahoma Health Sciences Center, 1110 North Stonewall Avenue, Oklahoma City, OK 73117, USA.

Published: August 2019

AI Article Synopsis

  • Polyethylene glycol (PEG)-phospholipid liposomes trigger non-specific immune responses due to negatively charged components at their interface; this study explores a new lipopolymer, HDAS-SHP, that may overcome these issues.
  • Post-insertion techniques revealed HDAS-SHP had a highly positive zeta potential and comparable efficiency to DSPE-PEG, but slightly less than traditional PEG variants.
  • Both HDAS-SHP and DSPE-PEG liposomes demonstrated significant leakage of their contents in serum but showed potential to suppress immune activation, suggesting HDAS-SHP could be an effective alternative for reducing immune reactions in liposome applications.

Article Abstract

Polyethylene glycol (PEG)-phospholipids in long-circulating liposomes cause non-specific immune reactions; mainly attributable to negatively-charged phosphoryl s at the interface of PEG and phospholipid. We investigated a novel lipopolymer, by which a superhydrophilic polymer (SHP) is conjugated to a non-phospholipid N-(2-aminoethyl)-N-hexadecyl-2-tetradecylsuccinamide (HDAS). The modification of preformed liposomes HDAS-SHP, HDAS-PEG, and DSPE-PEG were performed by post-insertion techniques. The efficiency of post-insertion and desorption rates, from the liposome surface, were determined. HDAS-SHP micelles showed highly positive zeta potential (+28.4 mV); zeta potentials of DSPE-PEG and HDAS-PEG micelles were -34.4 mV, and -3.7 mV, respectively. Critical micelle concentration predicted amphiphilicity of HDAS-SHP (CMC 2.58 µM) as close to that of DSPE-PEG (CMC 2.44 µM). Both HDAS-SHP and HDAS-PEG post-inserted with comparable efficiency (79%, and 73%, respectively), but noticeably lower than DSPE-PEG (90%). The desorption rate of HDAS-SHP was close to that of DSPE-PEG (0.53%/h, and 0.45%/h, respectively); the desorption rate for HDAS-PEG was slightly more at 0.67%/h. Compared to plain liposomes, both HDAS-SHP- and DSPE-PEG-liposomes showed significant leakage of encapsulated Na-fluorescein isothiocyanate (FITC) upon incubation with serum. At the same time, both modified liposomes were found to suppress serum levels of the complement proteins, Bb and C4d. We infer that HDAS-SHP is a viable alternative to commonly-used PEG-phospholipid derivatives for stealth purposes.

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Source
http://www.ncbi.nlm.nih.gov/pmc/articles/PMC6780652PMC
http://dx.doi.org/10.3390/nano9091185DOI Listing

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