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Toward smart design of retinal drug carriers: a novel bovine retinal explant model to study the barrier role of the vitreoretinal interface

机译:朝着视网膜药物载体的智能设计:一种新的牛视网膜外植体模型用于研究玻璃体界面的屏障作用

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摘要

Retinal gene delivery via intravitreal injection is hampered by various physiological barriers present in the eye of which the vitreoretinal (VR) interface represents the most serious hurdle. In this study, we present a retinal explant model especially designed to study the role of this interface as a barrier for the penetration of vectors into the retina. In contrast to all existing explant models, the developed model is bovine-derived and more importantly, keeps the vitreous attached to the retina at all times to guarantee an intact VR interface. After ex vivo intravitreal injection into the living retinal explant, the route of fluorescent carriers across the VR interface can be tracked. By applying two different imaging methods on this model, we discovered that the transfer through the VR barrier is size-dependent since 40 nm polystyrene particles are more easily taken up in the retina than 100 and 200 nm sized particles. In addition, we found that removing the vitreous, as commonly done for culture of conventional explants, leads to an overestimation of particle uptake, and conclude that the ultimate barrier to overcome for retinal uptake is undoubtedly the inner limiting membrane. Damaging this matrix resulted in a massive increase in particle transfer into the retina. In conclusion, we have developed a highly relevant ex vivo model that maximally mimics the human in vivo physiology which can be applied as a representative test set-up to assess the potential of promising drug delivery carriers to cross the VR interface.
机译:通过玻璃体内注射的视网膜基因递送是由存在于眼睛中的各种生理障碍而受到阻碍的,培养物(VR)界面代表最严重的障碍。在这项研究中,我们提出了一种视网膜外植体模型,尤其旨在研究该界面作为普及载体的屏障中的角色。与所有现有的外植体模型相比,开发的模型是牛得出的,更重要的是,始终将玻璃体连接到视网膜上以保证完整的VR界面。在离体玻璃体内注射到活导线外,可以跟踪VR界面上的荧光载体的路线。通过在该模型上施加两种不同的成像方法,我们发现通过VR屏障的转移是尺寸依赖性,因为40nm聚苯乙烯颗粒在视网膜中比100和200nm大小的颗粒更容易升高。此外,我们发现除去玻璃体,通常用于培养常规外消防植体的培养,导致粒子摄取的高估,并得出结论,视网膜吸收的最终屏障无疑是内部限制膜。损害该基质导致颗粒转移到视网膜中的大量增加。总之,我们开发了一种高度相关的前体内模型,最大地模仿人类体内生理学,可以应用于代表性测试设置,以评估有希望的药物输送载体的潜力交叉VR界面。

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