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Solution-enhanced dispersion by supercritical fluids: an ecofriendly nanonization approach for processing biomaterials and pharmaceutical compounds

机译:超临界流体增强溶液的分散性:一种用于处理生物材料和药物化合物的环保纳米化方法

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摘要

In recent years, the supercritical fluid (SCF) technology has attracted enormous interest from researchers over the traditional pharmaceutical manufacturing strategies due to the environmentally benign nature and economically promising character of SCFs. Among all the SCF-assisted processes for particle formation, the solution-enhanced dispersion by supercritical fluids (SEDS) process is perhaps one of the most efficient methods to fabricate the biomaterials and pharmaceutical compounds at an arbitrary gauge, ranging from micro- to nanoscale. The resultant miniature-sized particles from the SEDS process offer enhanced features concerning their physical attributes such as bioavailability enhancement due to their high surface area. First, we provide a brief description of SCFs and their behavior as an anti-solvent in SCF-assisted processing. Then, we aim to give a brief overview of the SEDS process as well as its modified prototypes, highlighting the pros and cons of the particular modification. We then emphasize the effects of various processing constraints such as temperature, pressure, SCF as well as organic solvents (if used) and their flow rates, and the concentration of drug/polymer, among others, on particle formation with respect to the particle size distribution, precipitation yield, and morphologic attributes. Next, we aim to systematically discuss the application of the SEDS technique in producing therapeutic nano-sized formulations by operating the drugs alone or in combination with the biodegradable polymers for the application focusing oral, pulmonary, and transdermal as well as implantable delivery with a set of examples. We finally summarize with perspectives.
机译:近年来,由于超临界流体(SCF)的环境友好性和经济前景,其在传统药物生产策略方面引起了研究人员的极大兴趣。在所有SCF辅助的颗粒形成过程中,超临界流体(SEDS)增强溶液的分散能力可能是在微米到纳米级任意尺度上制造生物材料和药物化合物的最有效方法之一。 SEDS工艺产生的微型颗粒由于其高表面积而提供了有关其物理属性的增强功能,例如生物利用度增强。首先,我们简要介绍了SCF及其在SCF辅助处理中作为反溶剂的行为。然后,我们旨在简要概述SEDS流程及其修改后的原型,重点介绍特定修改的利弊。然后,我们着重强调各种处理限制因素(例如温度,压力,SCF以及有机溶剂(如果使用))及其流速以及药物/聚合物浓度等对颗粒尺寸相对于颗粒形成的影响。分布,降水量和形态特征。接下来,我们旨在系统地讨论SEDS技术在生产治疗性纳米级制剂中的应用,方法是单独使用药物或与可生物降解的聚合物结合使用,以一组口服,肺部和透皮以及可植入的方式应用例子。我们最后总结了观点。

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