JunJie Ge

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Name: 葛君杰
Organization: Changchun Institute of Applied Chemistry , China
Department: Key Laboratory of Functional Polymer Materials, Ministry of Education
Title: Professor/Researcher(PhD)

TOPICS

Co-reporter:Hao Yang, Chuan Zhang, Chang Li, Yong Liu, Yingli An, Rujiang Ma, and Linqi Shi
Biomacromolecules 2015 Volume 16(Issue 4) pp:
Publication Date(Web):March 24, 2015
DOI:10.1021/acs.biomac.5b00155
Polymeric nanoparticles with glucose-responsiveness are of great interest in developing a self-regulated drug delivery system. In this work, glucose-responsive polymer vesicles were fabricated based on the complexation between a glucosamine (GA)-containing block copolymer PEG45-b-P(Asp-co-AspGA) and a phenylboronic acid (PBA)-containing block copolymer PEG114-b-P(Asp-co-AspPBA) with α-CD/PEG45 inclusion complex as the sacrificial template. The obtained polymer vesicles composed of cross-linked P(Asp-co-AspGA)/P(Asp-co-AspPBA) layer as wall and PEG chains as both inner and outer coronas. The vesicular morphology was observed by transmission electron microscopy (TEM), and the glucose-responsiveness was investigated by monitoring the variations of hydrodynamic diameter (Dh) and light scattering intensity (LSI) in the polymer vesicle solution with glucose using dynamic light scattering (DLS). Vancomycin as a model drug was encapsulated in the polymer vesicles and sugar-triggered drug release was carried out. This kind of polymer vesicle may be a promising candidate for glucose-responsive drug delivery.
Co-reporter:Xiaojun Liu, Rujiang Ma, Junyang Shen, Yanshuang Xu, Yingli An, and Linqi Shi
Biomacromolecules 2012 Volume 13(Issue 5) pp:
Publication Date(Web):March 19, 2012
DOI:10.1021/bm2018382
Oral administration of ionic drugs generally encounters with significant fluctuation in plasma concentration due to the large variation of pH value in the gastrointestinal tract and the pH-dependent solubility of ionic drugs. Polymeric complex micelles with charged channels on the surface provided us with an effective way to reduce the difference in the drug release rate upon change in pH value. The complex micelles were prepared by self-assembly of PCL-b-PAsp and PCL-b-PNIPAM in water at room temperature with PCL as the core and PAsp/PNIPAM as the mixed shell. With an increase in temperature, PNIPAM collapsed and enclosed the PCL core, while PAsp penetrated through the PNIPAM shell, leading to the formation of negatively charged PAsp channels on the micelle surface. Release behavior of ionic drugs from the complex micelles was remarkably different from that of usual core–shell micelles where diffusion and solubility of drugs played a key role. Specifically, it was mainly dependent on the conformation of the PAsp chains and the electrostatic interaction between PAsp and drugs, which could partially counteract the influence of pH-dependent diffusion and solubility of drugs. As a result, the variation of drug release rate with pH value was suppressed, which was favorable for acquiring relatively steady plasma drug concentration.
C N
Palladate(2-),tetrachloro-, hydrogen (1:2), (SP-4-1)-
1,4-Benzenedicarboxylic acid, nickel(2 ) salt (1:1)
Nitric acid, iron(3+)salt, hexahydrate (8CI,9CI)
Iron, compd. with nickel (2:1)
protium
Iron, compd. with platinum (1:1)
Iron carbide (Fe3C)