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Dynamics of HIV neutralization by a microbicide formulation layer: biophysical fundamentals and transport theory.

机译:杀菌剂配方层中和HIV的动力学:生物物理基础和运输理论。

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Topical microbicides are an emerging HIV/AIDS prevention modality. Microbicide biofunctionality requires creation of a chemical-physical barrier against HIV transmission. Barrier effectiveness derives from properties of the active compound and its delivery system, but little is known about how these properties translate into microbicide functionality. We developed a mathematical model simulating biologically relevant transport and HIV-neutralization processes occurring when semen-borne virus interacts with a microbicide delivery vehicle coating epithelium. The model enables analysis of how vehicle-related variables, and anti-HIV compound characteristics, affect microbicide performance. Results suggest HIV neutralization is achievable with postcoital coating thicknesses approximately 100 mum. Increased microbicide concentration and potency hasten viral neutralization and diminish penetration of infectious virus through the coating layer. Durable vehicle structures that restrict viral diffusion could provide significant protection. Our findings demonstrate the need to pair potent active ingredients with well-engineered formulation vehicles, and highlight the importance of the dosage form in microbicide effectiveness. Microbicide formulations can function not only as drug delivery vehicles, but also as physical barriers to viral penetration. Total viral neutralization with 100-mum-thin coating layers supports future microbicide use against HIV transmission. This model can be used as a tool to analyze diverse factors that govern microbicide functionality.
机译:局部杀菌剂是一种新兴的艾滋病毒/艾滋病预防手段。杀微生物剂的生物功能需要建立防止HIV传播的化学物理屏障。屏障效力源于活性化合物及其输送系统的特性,但对于这些特性如何转化为杀菌剂功能知之甚少。我们开发了一个数学模型,模拟精液传播的病毒与杀微生物剂运输工具包被的上皮相互作用时发生的生物学相关运输和HIV中和过程。该模型可以分析与车辆有关的变量以及抗HIV复合特征如何影响杀菌剂的性能。结果表明,性交后涂层的厚度约为100微米,可以实现HIV中和。杀菌剂浓度和效力的提高会加速病毒中和,并降低传染性病毒通过涂层的渗透。限制病毒扩散的耐用车辆结构可以提供重要的保护。我们的发现表明,有必要将有效的活性成分与精心设计的制剂载体配对,并强调剂型在杀微生物剂有效性中的重要性。杀微生物剂制剂不仅可以充当药物递送载体,而且还可以作为病毒渗透的物理屏障。具有100微米薄涂层的总病毒中和作用支持将来使用杀微生物剂来抵抗HIV传播。该模型可以用作分析控制杀菌剂功能的各种因素的工具。

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