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A novel direct fibre generation technique for preparing functionalized and compound scaffolds and membranes for applications within the life sciences

机译:一种新型的直接纤维生成技术,用于制备功能化和复合的支架和膜,以用于生命科学领域

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Fibres, scaffolds and membranes have shown in the past decade their tremendous applicability to the life sciences. Essentially, these constructs have recently spearheaded focused applications in and within approaches to assist in the development of biologically active tissues to effective mechanisms for targeted and controlled cellular/drug delivery. There are several routes for forming continuous fibres from which functionalized scaffolds to membranes are prepared. One such technique that has demonstrated its wide versatility is none other than electrospinning. This is an electrified threading process capable of generating micro- and nano-sized (<50 nm) threads, which have been explored with a wide range of material compositions in their many manifestations. Although this threading process is economical and flexible, the process has its downsides, namely the associated high voltage to the preclusion of threading highly conducting viscoelastic media. In the current work we unveil a three-needle pressure-assisted spinning (PAS) approach comparable to coaxial- or co-electrospinning, without the hazardous high voltage and possessing the ability to thread highly conducting viscoelastic media from which pre-designed to functionalized compound structural units could be generated. Previously in our hands we demonstrated this technique with a two-needle system, which was only able to process a single- or multi-phase suspension at any given time. In its present form, two single/multi-phase miscible or immiscible media could be processed simultaneously. Therefore, PAS would be most useful to the biomedical world because a majority of biological media containing biological matter such as living cells have within them unprecedented concentrations of ions, which are needed by the living organisms for maintaining the cells/organisms' intricate metabolisms. In our hands, pressure-assisted spinning will compete directly with electrospinning and have a revolutionary effect on the fibre, scaffold and membrane preparation arena as applied to the plethora of applications within the life sciences.
机译:在过去的十年中,纤维,脚手架和膜已经证明了它们在生命科学中的巨大适用性。本质上,这些构建物最近在方法中和方法中带头应用,以协助生物活性组织发展为靶向和控制细胞/药物递送的有效机制。有几种形成连续纤维的方法,从中可以制备官能化的支架至膜。一种证明其广泛用途的技术就是静电纺丝。这是一种能够产生微米级和纳米级(<50 nm)螺纹的电气化螺纹加工工艺,人们已经对其多种表现形式的各种材料成分进行了探索。尽管这种穿线过程既经济又灵活,但该过程也有其缺点,即相关的高压导致无法穿入高导电性粘弹性介质。在当前的工作中,我们揭示了一种三针压力辅助纺丝(PAS)方法,该方法可与同轴或共电纺丝相比,没有危险的高压,并且具有将高导电性粘弹性介质穿线的能力,可以将其预先设计成功能化的化合物。可以生成结构单元。以前,我们通过两针系统演示了该技术,该系统只能在任何给定时间处理单相或多相悬浮液。以其当前形式,可以同时处理两种单相/多相可混溶或不可混溶的介质。因此,PAS对生物医学领域将是最有用的,因为大多数包含生物物质的生物介质(例如活细胞)中都含有前所未有的离子浓度,这是活生物体维持细胞/生物复杂代谢所必需的。在我们的手中,压力辅助纺丝将直接与静电纺丝竞争,并将对纤维,支架和膜制备领域产生革命性的影响,这在生命科学领域中的应用非常广泛。

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