2 research outputs found
Hyperbranched Double Hydrophilic Block Copolymer Micelles of Poly(ethylene oxide) and Polyglycerol for pH-Responsive Drug Delivery
We report the synthesis of a well-defined hyperbranched
double
hydrophilic block copolymer of polyÂ(ethylene oxide)-<i>hyperbranched</i>-polyglycerol (PEO-<i>hb</i>-PG) to develop an efficient
drug delivery system. In specific, we demonstrate the hyperbranched
PEO-<i>hb</i>-PG can form a self-assembled micellar structure
on conjugation with the hydrophobic anticancer agent doxorubicin,
which is linked to the polymer by pH-sensitive hydrazone bonds, resulting
in a pH-responsive controlled release of doxorubicin. Dynamic light
scattering, atomic force microscopy, and transmission electron microscopy
demonstrated successful formation of the spherical core–shell
type micelles with an average size of about 200 nm. Moreover, the
pH-responsive release of doxorubicin and in vitro cytotoxicity studies
revealed the controlled stimuli-responsive drug delivery system desirable
for enhanced efficiency. Benefiting from many desirable features of
hyperbranched double hydrophilic block copolymers such as enhanced
biocompatibility, increased water solubility, and drug loading efficiency
as well as improved clearance of the polymer after drug release, we
believe that double hydrophilic block copolymer will provide a versatile
platform to develop excellent drug delivery systems for effective
treatment of cancer
One-Pot Synthesis of Linear-Hyperbranched Amphiphilic Block Copolymers Based on Polyglycerol Derivatives and Their Micelles
This paper describes the one-pot
synthesis of a polyglycidol (PG)-based
polymer, polyÂ(ethoxyethyl glycidyl ether) (PEEGE)-<i>b</i>-[<i>hyperbranched</i> polyglycerol (<i>hb</i>PG)-<i>co</i>-PEEGE]<sub><i>x</i>/<i>y</i></sub>, its micelle formulation, and the ability to encapsulate a
model therapeutic molecule. Amphiphilic block copolymers were prepared
by the sequential addition of ethoxyethyl glycidyl ether (EEGE) to
glycidol. The composition of the block copolymers varied from 62:38
to 92:8. Block copolymers with composition <i>x</i>:<i>y</i> ≥ 66:34 were soluble only in organic solvents.
Micelles were formulated by injection of deionized water into a tetrahydrofuran
block copolymer solution with or without pyrene as a model hydrophobic
molecule. The critical micelle concentration was 18.2–30.9
mg/L, and the micelle size was 100–250 nm. The pyrene-containing
micelle rapidly collapsed on acidic exposure, allowing conversion
of hydrophobic PEEGE to hydrophilic PG, thus, facilitating the release
of the encapsulated pyrene. Cytotoxicity data showed high biocompatibility
of PG-based block copolymers, suggesting their potential as a drug
delivery carrier