Preparation and characterization of PLGA particles for subcutaneous controlled drug release by membrane emulsification

被引:67
|
作者
Gasparini, G. [1 ]
Kosvintsev, S. R. [2 ]
Stillwell, M. T. [1 ]
Holdich, R. G. [1 ]
机构
[1] Univ Loughborough, Dept Chem Engn, Loughborough LE11 3TU, Leics, England
[2] Micropore Technol Ltd, Innovat Ctr, Loughborough LE11 3EH, Leics, England
关键词
PLGA; membrane emulsification; microparticle; osmotic pressure; encapsulation efficiency;
D O I
10.1016/j.colsurfb.2007.08.011
中图分类号
Q6 [生物物理学];
学科分类号
071011 ;
摘要
Uniformly sized microparticles of poly(D,L-lactic-co-glycolic) (PLGA) acid, with controllable median diameters within the size range 40-140 mu m, were successfully prepared by membrane emulsification of an oil phase injected into an aqueous phase, followed by solvent removal. Initially, simple particles were produced as an oil in water emulsion, where dichloromethane (DCM) and PLGA were the oil phase and water with stabiliser was the continuous phase. The oil was injected into the aqueous phase through an array type microporous membrane, which has very regular pores equally spaced apart, and two different pore sizes were used: 20 and 40 mu m in diameter. Shear was provided at the membrane surface, causing the drops to detach, by a simple paddle stirrer rotating above the membrane. Further tests involved the production of a primary water in oil emulsion, using a mechanical homogeniser, which was then subsequently injected into a water phase through the microporous membrane to form a water in oil in water emulsion. These tests used a water-soluble model drug (blue dextran) and encapsulation efficiencies of up to 100% were obtained for concentrations of 15% PLGA dissolved in the DCM and injected through a 40 mu m membrane. Solidification of the PLGA particles was followed by removal of the DCM through the surrounding aqueous continuous phase. Different PLGA concentrations, particle size and osmotic pressures were considered in order to find their effect on encapsulation efficiency. Osmotic pressure was varied by changing the salt concentration in the external aqueous phase whilst maintaining a constant internal aqueous phase salt concentration. Osmotic pressure was found to be a significant factor on the resulting particle structure, for the tests conducted at lower PLGA concentrations (10% and 5% PLGA). The PLGA concentration and particle size distribution influence the time to complete the solidification stage and a slow solidification, formed by stirring gently overnight, provided the most monosized particles and highest encapsulation efficiency. (c) 2007 Elsevier B.V. All rights reserved.
引用
收藏
页码:199 / 207
页数:9
相关论文
共 50 条
  • [1] Pharmaceutical Particles Design by Membrane Emulsification: Preparation Methods and Applications in Drug Delivery
    Piacentini, Emma
    Dragosavac, Marijana
    Giorno, Lidietta
    [J]. CURRENT PHARMACEUTICAL DESIGN, 2017, 23 (02) : 302 - 318
  • [2] Preparation and characterization of porous membrane for drug release
    Lee, Soo Young
    Cho, Young Ho
    Youn, Ju Yong
    Kim, Moori Suk
    Lee, Bong
    Khang, Gilson
    Lee, Hai Bang
    [J]. ASBM7: ADVANCED BIOMATERIALS VII, 2007, 342-343 : 485 - +
  • [3] Preparation and characterization of bee venom-loaded PLGA particles for sustained release
    Park, Min-Ho
    Jun, Hye-Suk
    Jeon, Jong-Woon
    Park, Jin-Kyu
    Lee, Bong-Joo
    Suh, Guk-Hyun
    Park, Jeong-Sook
    Cho, Cheong-Weon
    [J]. PHARMACEUTICAL DEVELOPMENT AND TECHNOLOGY, 2018, 23 (09) : 857 - 864
  • [4] Preparation of insulin-loaded PLA/PLGA microcapsules by a novel membrane emulsification method and its release in vitro
    Liu, Rong
    Huang, Shan-Shan
    Wan, Yin-Hua
    Ma, Guang-Hui
    Su, Zhi-Guo
    [J]. COLLOIDS AND SURFACES B-BIOINTERFACES, 2006, 51 (01) : 30 - 38
  • [5] Preparation, characterization of PLGA/chitosan nanoparticles as a delivery system for controlled release of DHA
    Liu, Enchao
    Zhao, Shenghan
    Li, Xiao
    Meng, Xianghong
    Liu, Bingjie
    [J]. INTERNATIONAL JOURNAL OF BIOLOGICAL MACROMOLECULES, 2021, 185 : 782 - 791
  • [6] Preparation of core particles for toner application by membrane emulsification
    Ha, YK
    Song, HS
    Lee, HJ
    Kim, JH
    [J]. COLLOIDS AND SURFACES A-PHYSICOCHEMICAL AND ENGINEERING ASPECTS, 2000, 162 (1-3) : 289 - 293
  • [7] Preparation, Characterization, and Property of Chitosan/Polyethylene Oxide Electrospun Nanofibrous Membrane for Controlled Drug Release
    Li, Wei
    Luo, Tian
    Shi, Yang
    Yang, Yanjuan
    Huang, Xiaoshan
    Xing, Kexin
    Liu, Lifei
    Wang, Mengqin
    [J]. INTEGRATED FERROELECTRICS, 2014, 151 (01) : 164 - 178
  • [8] Simulation of Drug Release from PLGA Particles In Vivo
    Sasaki, Kaori
    Igarashi, Martha
    Hinata, Manami
    Komori, Yuna
    Fukushima, Kouhei
    [J]. JOURNAL OF DRUG DELIVERY, 2013, 2013
  • [9] Preparation, Characterization and Evaluation of Drug Release Properties of Simvastatin-loaded PLGA Microspheres
    Masaeli, Reza
    Kashi, Tahereh. S. Jafarzadeh
    Dinarvand, Rassoul
    Tahriri, Mohammadreza
    Rakhshan, Vahid
    Esfandyari-Manesh, Mehdi
    [J]. IRANIAN JOURNAL OF PHARMACEUTICAL RESEARCH, 2016, 15 : 205 - 211
  • [10] Preparation and Characterization of Poly (D,L-Lactide-co-Glycolide) (PLGA) Nanoparticles Loaded with Linamarin for Controlled Drug Release
    Hussein, Ahmed S.
    Fakhru'l-Razi, A.
    Abdullah, Norhafizah
    [J]. INTERNATIONAL JOURNAL OF POLYMER ANALYSIS AND CHARACTERIZATION, 2013, 18 (06) : 414 - 422