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Mechanistic evaluation of acidic microclimate pH development in biodegradable poly(lactic-co-glycolic acid) delivery systems.

机译:可生物降解的聚乳酸-乙醇酸输送系统中酸性微气候pH值发展的机械评估。

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摘要

Copolymers of lactic and glycolic acids (PLGAs) have shown great potential as carriers for controlled delivery of proteins. However, insufficient stability of encapsulated proteins during the extended drug release period has been a principal obstacle for successful development of drug products. Although the acidic microclimate pH (mupH) has been identified as a principal stress for instability of PLGA-encapsulated proteins, little attempt to understand the underlying factors that influence mupH has been reported.; In this study, firstly, we developed an equilibrium mathematical model to attempt for the first time quantitative prediction of mupH. The model successfully predicted mupH measured by a potentiometric method. The mupH model also revealed that mupH kinetics was primarily a function of. (i) kinetics of water-soluble acid content and composition in the polymer matrix, and (ii) polymer-water partition coefficients of water-soluble degradation products, which suggested that controlling mupH can be achieved by the control of (i) acid production, (ii) acid transport out of the polymer matrix, and (iii) acid neutralization with excipients.; The mupH distribution inside PLGA matrix was then evaluated. The direct quantification of mupH was established by ratiometric measurement of acidic pH sensitive probe by confocal laser scanning microscopy (CLSM). The pH gradient existed over a short distance adjacent to edge of film and its front moved further towards edge with longer incubation times. The coencapsulation with protein (bovine serum albumin) partially neutralized microclimate pH due to the protein's buffering ability.; The transport behavior of acids was studied by measuring monomer diffusion coefficients in thin PLGA films. Diffusivities of glycolic and lactic acids were concentration-dependent, and could be expressed as an exponential function of concentration for C ≤ 0.5mol/L. Consistent with this behavior, glass transition temperatures of films decreased with increasing concentration, and glycolic acid exhibited higher plasticization effect and diffusivity than observed for lactic acid. Acids also diffused faster in more hydrophilic PLGAs.; The mupH distribution inside PLGA microspheres formulations were monitored by CLSM. mupH distribution kinetics were significantly affected by polymer MW, composition, microspheres size, and preparation method. PLGA microspheres for bFGF delivery were then prepared accordingly with mupH control and addition of stabilizers. The microspheres prepared from an optimized formulation showed continuous release for over a month in vitro, and the released protein remained bioactive.; In summary, the findings of the thesis have provided a physical chemical basis for mupH development in PLGA delivery systems in order to optimize delivery of pHsensitive encapsulated molecules (e.g. proteins). The plasticization effect of the monomers on PLGA and its role in monomer diffusion through PLGA has important implications on PLGA erosion and release of drugs.
机译:乳酸和乙醇酸(PLGA)的共聚物已显示出作为控制蛋白质传递载体的巨大潜力。然而,在延长的药物释放期间,包封的蛋白质的稳定性不足一直是成功开发药物产品的主要障碍。尽管酸性微气候pH(mupH)已被确定为PLGA封装蛋白不稳定的主要压力,但几乎没有尝试了解影响mupH的潜在因素。在这项研究中,首先,我们开发了一个平衡数学模型来尝试首次定量预测mupH。该模型成功预测了通过电位法测量的mupH。 mupH模型还揭示了mupH动力学主要是其功能。 (i)聚合物基质中水溶性酸含量和组成的动力学,以及(ii)水溶性降解产物的聚合物-水分配系数,这表明可以通过控制(i)产酸来控制mupH ;(ii)酸从聚合物基质中运出,以及(iii)用赋形剂中和。然后评估PLGA基质内部的mupH分布。通过共聚焦激光扫描显微镜(CLSM)对酸性pH敏感探针进行比例测量,可以建立mupH的直接定量分析。 pH梯度存在于与膜边缘相邻的短距离内,并且其前部向边缘移动的时间更长,孵育时间更长。与蛋白质(牛血清白蛋白)的共包封由于蛋白质的缓冲能力而部分中和了微气候的pH。通过测量PLGA薄膜中单体的扩散系数研究了酸的传输行为。乙醇酸和乳酸的扩散率取决于浓度,可以表示为C≤0.5mol / L时浓度的指数函数。与此行为一致,薄膜的玻璃化转变温度随着浓度的增加而降低,并且乙醇酸比乳酸所观察到的具有更高的增塑作用和扩散系数。酸在亲水性更高的PLGA中的扩散速度也更快。通过CLSM监测PLGA微球制剂内的mupH分布。 mupH分布动力学受到聚合物分子量,组成,微球尺寸和制备方法的显着影响。然后通过控制mupH和添加稳定剂来制备用于bFGF递送的PLGA微球。由优化的制剂制备的微球在体外显示出连续释放超过一个月,并且释放的蛋白质保持生物活性。总之,本发明的发现为PLGA递送系统中mupH的发展提供了物理化学基础,以优化pH敏感的包封分子(例如蛋白质)的递送。单体对PLGA的增塑作用及其在单体通过PLGA扩散中的作用对PLGA腐蚀和药物释放具有重要意义。

著录项

  • 作者

    Ding, Guangbing (Amy).;

  • 作者单位

    University of Michigan.;

  • 授予单位 University of Michigan.;
  • 学科 Health Sciences Pharmacy.
  • 学位 Ph.D.
  • 年度 2005
  • 页码 244 p.
  • 总页数 244
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 药剂学;
  • 关键词

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