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Construction of a novel microfluidic experimental setup for testing recent glaucoma drainage devices

机译:用于测试最近的青光眼排水装置的新型微流体实验装置

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摘要

Glaucoma is an eye disorder in which the optic nerve is damaged over time due to a sustained elevation of the intraocular pressure (IOP). Being the second leading cause of blindness according to the reports of the World Health Organization, glaucoma is not only a serious ocular disease that threatens individuals, but also a community health problem. In recent years, great improvement has been achieved in the technology of implants used in the treatment of the disease. Despite the great effort dedicated to the design and implementation of the glaucoma drainage devices (GDD), they still have unsolved problems and weaknesses. Most of the currently employed GDDs are very simple and have major problems such as reversed flow, choking and a coarse interval of pressure control. Experiments must be devised to investigate the flow behavior inside these devices. In this study, an accurate microfluidics experimental setup is constructed to analyze and characterize the in-vitro performance of actively employed GDDs on the glaucoma treatment. Proposed setup includes a pressurized fluid reservoir, ELVEFLOW microfluidics flow rate measurement/control unit, microfluidics flow/pressure sensors, and data analysis system. In the setup, more precise measurements than experimental setups in literature is planned to be provided. It is estimated that the results showing consistency with in-vivo measurements will be obtained, behavior of the fluid passing through the GDDs will be observed and issues with design flaws will be addressed.
机译:青光眼是眼睛疾病,其中视神经受损随着时间的推移,由于眼内压(IOP)的持续升高。作为根据世界卫生组织的报告失明的第二大原因,青光眼不仅是一种严重的眼部疾病,威胁个人,也是一个社会的健康问题。近年来,很大的改进已经在疾病的治疗中使用的植入物的技术来实现的。尽管致力于青光眼引流装置(GDD)的设计和实现的巨大努力,他们仍然有未解决的问题和薄弱环节。大多数目前使用的的GDDs的是非常简单的,并且具有重大的问题,例如反流,窒息和压力控制的粗间隔。实验必须设计调查这些设备内的流动行为。在这项研究中,一个准确的微流体实验装置被构造成分析和表征在青光眼治疗积极地采用的GDDs的体外性能。提出的设置包括一个加压流体储存器,微流体ELVEFLOW流量测量/控制单元,微流体流/压力传感器,和数据分析系统。在设置,比在文献中的实验设置更精确的测量计划来提供。据估计,表示与在体内测量的一致性的结果将被获得,通过的GDDs的流体通过的行为将被观察到的,并与设计上的缺陷的问题将得到解决。

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