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Investigation of the Physicochemical and Physicomechanical Properties of a Novel Intravaginal Bioadhesive Polymeric Device in the Pig Model

机译:在猪模型中新型阴道内生物粘附聚合物装置的理化和物理力学性能的研究

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摘要

The purpose of this study was to develop and evaluate the bioadhesivity, in vitro drug release, and permeation of an intravaginal bioadhesive polymeric device (IBPD) loaded with 3′-azido-3′-deoxythymidine (AZT) and polystyrene sulfonate (PSS). Modified polyamide 6,10, poly(lactic-coglycolic acid), polyacrylic acid, polyvinyl alcohol, and ethylcellulose were blended with model drugs AZT and PSS as well as radio-opaque barium sulfate (BaSO4) and then compressed into caplet devices on a tableting press. One set of devices was coated with 2% w/v pentaerythritol polyacrylic acid (APE-PAA) while another remained uncoated. Thermal analysis was performed on the constituent polymers as well the IBPD. The changes in micro-environmental pH within the simulated human vaginal fluid due to the presence of the IBPD were assessed over a period of 30 days. Textural profile analysis indicated that the bioadhesivity of the APE-PAA-coated devices (3.699 ± 0.464 N; 0.0098 ± 0.0004 J) was higher than that of the uncoated devices (1.198 ± 0.150 N; 0.0019 ± 0.0001 J). In addition, BaSO4-facilitated X-ray imaging revealed that the IBPD adhered to pig vaginal tissue over the experimental period of 30 days. Controlled drug release kinetics was obtained over 72 days. During a 24-h permeation study, an increase in drug flux for both AZT (0.84 mg cm−2 h−1) and PSS (0.72 mg cm−2 h−1) was realized up to 12 h and thereafter a steady-state was achieved. The diffusion and dissolution dynamics were mechanistically deduced based on a chemometric and molecular structure modeling approach. Overall, results suggested that the IBPD may be sufficiently bioadhesive with desirable physicochemical and physicomechanical stability for use as a prolonged intravaginal drug delivery device.
机译:这项研究的目的是开发和评估载有3'-叠氮基3'-脱氧胸苷(AZT)和聚苯乙烯磺酸盐(PSS)的阴道内生物粘附聚合物器件(IBPD)的生物粘附性,体外药物释放和渗透性。将改性的聚酰胺6,10,聚乳酸-乙醇酸,聚丙烯酸,聚乙烯醇和乙基纤维素与模型药物AZT和PSS以及不透射线的硫酸钡(BaSO4)混合,然后压片成片状装置按。一组装置涂有2%w / v季戊四醇聚丙烯酸(APE-PAA),而另一组则未涂。对组成聚合物以及IBPD进行了热分析。在30天内评估了由于IBPD的存在而导致的模拟人阴道液中微环境pH的变化。结构轮廓分析表明,APE-PAA涂层装置的生物粘附性(3.699±0.464N; 0.0098±0.0004J)高于未涂层装置的生物粘附性(1.198±0.150N; 0.0019±0.0001J)。此外,BaSO4促进的X射线成像显示,在30天的实验期内,IBPD粘附在猪的阴道组织上。在72天内获得了受控的药物释放动力学。在24小时的渗透研究中,AZT(0.84 mg cm -2 h -1 )和PSS(0.72 mg cm −直到12h才实现2 h -1 ),此后达到了稳态。基于化学计量学和分子结构建模方法,机械地推导了扩散和溶解动力学。总体而言,结果表明,IBPD可能具有足够的生物粘附性,并具有理想的物理化学和物理机械稳定性,可用作延长的阴道内给药装置。

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