Magnetically actuated glaucoma drainage device with adjustable flow properties after implantation

Inês C. F. Pereira, H. Wyss, H. Beckers, J. Toonder
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Abstract

Glaucoma is the second leading cause of preventable blindness worldwide, following cataract formation. A rise in the intraocular pressure (IOP) is a major risk factor for this disease, and results from an elevated resistance to aqueous humor outflow from the anterior chamber of the eye. Glaucoma drainage devices provide an alternative pathway through which the aqueous humor can effectively exit the eye, thereby lowering the IOP. However, post-operative IOP is unpredictable and current implants are deficient in maintaining IOP at optimal levels. To address this deficiency, we are developing an innovative, non-invasive magnetically actuated glaucoma implant with a hydrodynamic resistance that can be adjusted following surgery. This adjustment is achieved by integrating a magnetically actuated microvalve into the implant, which can open or close fluidic channels using an external magnetic stimulus. This microvalve was fabricated from poly(styrene–block–isobutylene–block–styrene), or ‘SIBS’, containing homogeneously dispersed magnetic microparticles. “Micro-pencil” valves of this material were fabricated using a combination of femtosecond laser machining with hot embossing. The glaucoma implant is comprised of a drainage tube and a housing element fabricated from two thermally bonded SIBS layers with the microvalve positioned in between. Microfluidic experiments involving actuating the magnetic micro-pencil with a moving external magnet confirmed the valving function. A pressure difference of around 6 mmHg was achieved, which is sufficient to overcome hypotony (i.e., too low IOP)—one of the most common post-operative complications following glaucoma surgery.
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磁致青光眼引流装置,植入后流量特性可调
青光眼是仅次于白内障的全球第二大可预防失明原因。眼内压(IOP)升高是本病的主要危险因素,其原因是对眼前房房水流出的抵抗力升高。青光眼引流装置提供了另一种途径,通过该途径房水可以有效地流出眼睛,从而降低IOP。然而,术后IOP是不可预测的,目前的植入物在维持最佳IOP水平方面存在缺陷。为了解决这一缺陷,我们正在开发一种创新的、无创的磁驱动青光眼植入物,该植入物具有水动力阻力,可以在手术后进行调整。这种调整是通过将一个磁致动微阀集成到植入物中来实现的,该微阀可以使用外部磁刺激打开或关闭流体通道。这种微阀是由含有均匀分散的磁性微粒的聚苯乙烯块-异丁烯块-苯乙烯块(SIBS)制成的。采用飞秒激光加工和热压加工相结合的方法制造了这种材料的“微型铅笔”阀。青光眼植入物由引流管和由两个热粘合SIBS层制成的外壳元件组成,微阀位于两者之间。用移动的外磁铁驱动磁性微铅笔的微流控实验证实了阀的功能。眼压差约为6 mmHg,足以克服低眼压(即IOP过低),这是青光眼手术后最常见的术后并发症之一。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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