Prediction of solvent removal profile and effect on properties for peptide-loaded PLGA microspheres prepared by solvent extraction/evaporation method

被引:92
作者
Li, WI
Anderson, KW
Mehta, RC
DeLuca, PP
机构
[1] UNIV KENTUCKY,COLL PHARM,LEXINGTON,KY 40536
[2] PENN STATE UNIV,DEPT CHEM ENGN,UNIVERSITY PK,PA 16802
[3] UNIV KENTUCKY,DEPT CHEM ENGN,LEXINGTON,KY 40506
基金
美国国家科学基金会;
关键词
microsphere; solvent removal; controlled release; pore formation;
D O I
10.1016/0168-3659(95)00076-3
中图分类号
O6 [化学];
学科分类号
0703 ;
摘要
Using a predictive mathematical model, several important extrinsic process variables were varied to simulate the process dynamics of microsphere formation. These included the composition profile in the dispersed phase, the solvent concentration profile in the continuous phase and the solvent removal profile in the dispersed phase. By superimposing the composition profile in the dispersed phase with the phase transition boundary, the progression of phase transition in microsphere formation can be evaluated. Low dispersed phase/continuous phase ratio, high continuous phase-addition rate, high temperature, high heating rate and high initial polymer concentration in the dispersed phase contributed to enhanced solvent removal. The higher solvent removal led to a heterogeneous composition distribution in the dispersed phase and the early cross-over of the gelation point (viscous boundary) of the periphery region which initiates the onset of solidification in this region. These phenomena resulted in an increasing pore size, lower surface area, denser periphery, higher residual solvent and slower drug release. In addition, the progress toward the glassy boundary may also play a major role in the ultimate solvent residual. Slow solvent removal gave rise to a homogenous distribution of the components in the dispersed phase due to the delay of hardening. The extrinsic manageable parameters could be varied during microsphere formation to obtain the desired rate of solvent removal as well as the desired microsphere properties. The mathematical model was used to simulate such conditions to facilitate the experimental design for the desired microsphere properties.
引用
收藏
页码:199 / 214
页数:16
相关论文
共 11 条
  • [1] RHEOLOGY OF MICROSPHERE FORMATION AND REFINEMENT
    AMUNDSON, KR
    BOUSFIELD, DW
    SOONG, DS
    [J]. JOURNAL OF APPLIED PHYSICS, 1986, 59 (07) : 2306 - 2313
  • [2] DIFFUSION-CONTROLLED FORMATION OF POROUS STRUCTURES IN TERNARY POLYMER SYSTEMS
    COHEN, C
    TANNY, GB
    PRAGER, S
    [J]. JOURNAL OF POLYMER SCIENCE PART B-POLYMER PHYSICS, 1979, 17 (03) : 477 - 489
  • [3] Jeyanthi R., 1993, Pharmaceutical Research (New York), V10, pS277
  • [4] JEYANTHI R, 1996, IN PRESS J CONTROL R
  • [5] ANALYSIS OF THE STRUCTURE-DETERMINING PROCESS OF PHASE INVERSION MEMBRANES
    KIMMERLE, K
    STRATHMANN, H
    [J]. DESALINATION, 1990, 79 (2-3) : 283 - 302
  • [6] LI SG, 1987, DESALINATION, V62, P79
  • [7] LI WI, 1995, J CONTROL RELEASE
  • [8] BIODEGRADABLE MICROSPHERES AS DEPOT SYSTEM FOR PARENTERAL DELIVERY OF PEPTIDE DRUGS
    MEHTA, RC
    JEYANTHI, R
    CALIS, S
    THANOO, BC
    BURTON, KW
    DELUCA, PP
    [J]. JOURNAL OF CONTROLLED RELEASE, 1994, 29 (03) : 375 - 384
  • [9] PREFORMED POROUS MICROSPHERES FOR CONTROLLED AND PULSED RELEASE OF MACROMOLECULES
    SUPERSAXO, A
    KOU, JH
    TEITELBAUM, P
    MASKIEWICZ, R
    [J]. JOURNAL OF CONTROLLED RELEASE, 1993, 23 (02) : 157 - 164
  • [10] TSAI TL, 1994, THESIS U KENTUCKY LE