Department of Ophthalmology, University Eye Hospital Zurich, Zurich, Switzerland.
Biotechnol Appl Biochem. 2011 Sep-Oct;58(5):363-70. doi: 10.1002/bab.53.
Lacrimal surgery in cases of severely obstructed or missing canalicular ducts is highly challenging. In these cases, the placement of a bypass tube is currently the only option to restore the drainage of tears into the nose and reduce the symptomatic watery eye. Different approaches to achieve functional drainage have been tried using blood vessels or artificial implants. The implantation of the rigid Lester Jones tube is, since its introduction in the late 1960s, the gold standard. The functional success is satisfactory. However, complication rates are high and remain, even with many modifications of the original design, a major problem. These complications include mainly the displacement and blockage of the tube, requiring regular checkups, as well as irritation of the surrounding tissue including the nose and the eye. The objective of this study was to develop a new lacrimal duct conduit (LDC) to restore structural and functional integrity of the lacrimal drainage system. The conduit is constructed with a novel polymer, polyhedral oligomeric silsesquioxane-poly(carbonate-urea)urethane (POSS-PCU), that offers biocompatibility. We exploit nanotopography to evade the problems associated with current applications. A number of extrusion techniques were investigated for this purpose: ultrasonic atomization spraying, electrohydrodynamic atomization spraying/spinning, extrusion-coagulation, and high-pressure coagulation by autoclave and casting. Finally, the coagulation and cast technique were selected to construct an LDC superior to its predecessors, and its advantages highlighted.
严重阻塞或缺失泪小管的泪道手术极具挑战性。在这些情况下,放置旁路管目前是恢复眼泪排入鼻腔并减少症状性溢泪的唯一选择。为了实现功能性引流,已经尝试了使用血管或人工植入物的不同方法。自 20 世纪 60 年代末引入刚性 Lester Jones 管以来,其一直是金标准。其功能成功率令人满意。然而,即使经过多次原始设计的改进,并发症发生率仍然很高,仍是一个主要问题。这些并发症主要包括管的移位和阻塞,需要定期检查,以及周围组织的刺激,包括鼻子和眼睛。本研究的目的是开发一种新的泪道导管 (LDC),以恢复泪液引流系统的结构和功能完整性。该导管由一种新型聚合物多面体低聚倍半硅氧烷-聚(碳酸酯-脲)聚氨酯(POSS-PCU)构建,具有生物相容性。我们利用纳米形貌来规避与当前应用相关的问题。为此,研究了多种挤出技术:超声雾化喷涂、静电纺丝喷涂/纺丝、挤出-凝固以及高压凝固(通过高压釜和浇铸)。最后,选择凝固和浇铸技术来构建优于前代产品的 LDC,并突出其优势。