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通过硬化房水流出途径来升高眼压,从而在大鼠中建立青光眼模型。

Modeling glaucoma in rats by sclerosing aqueous outflow pathways to elevate intraocular pressure.

作者信息

Morrison John C, Cepurna William O, Johnson Elaine C

机构信息

The Kenneth C. Swan Ocular Neurobiology Laboratory, Casey Eye Institute, Oregon Health and Science University, USA.

The Kenneth C. Swan Ocular Neurobiology Laboratory, Casey Eye Institute, Oregon Health and Science University, USA.

出版信息

Exp Eye Res. 2015 Dec;141:23-32. doi: 10.1016/j.exer.2015.05.012. Epub 2015 May 21.

Abstract

Injection of hypertonic saline via episcleral veins toward the limbus in laboratory rats can produce elevated intraocular pressure (IOP) by sclerosis of aqueous humor outflow pathways. This article describes important anatomic characteristics of the rat optic nerve head (ONH) that make it an attractive animal model for human glaucoma, along with the anatomy of rat aqueous humor outflow on which this technique is based. The injection technique itself is also described, with the aid of a supplemental movie, including necessary equipment and specific tips to acquire this skill. Outcomes of a successful injection are presented, including IOP elevation and patterns of optic nerve injury. These concepts are then specifically considered in light of the use of this model to assess potential neuroprotective therapies. Advantages of the hypertonic saline model include a delayed and relatively gradual IOP elevation, likely reproduction of scleral and ONH stresses and strains that may be important in producing axonal injury, and its ability to be applied to any rat (and potentially mouse) strain, leaving the unmanipulated fellow eye as an internal control. Challenges include the demanding surgical skill required by the technique itself, a wide range of IOP response, and mild corneal clouding in some animals. However, meticulous application of the principles detailed in this article and practice will allow most researchers to attain this useful skill for studying cellular events of glaucomatous optic nerve damage.

摘要

在实验大鼠中,通过巩膜静脉向角膜缘注射高渗盐水可使房水流出途径硬化,从而导致眼压(IOP)升高。本文描述了大鼠视神经乳头(ONH)的重要解剖特征,这些特征使其成为研究人类青光眼的有吸引力的动物模型,同时还介绍了该技术所基于的大鼠房水流出的解剖结构。借助一部补充影片,本文还描述了注射技术本身,包括所需设备和掌握该技术的具体技巧。文中展示了成功注射的结果,包括眼压升高和视神经损伤模式。随后,结合使用该模型评估潜在神经保护疗法的情况,对这些概念进行了具体考量。高渗盐水模型的优点包括眼压升高延迟且相对缓慢,可能重现了巩膜和视神经乳头的应力和应变,这在导致轴突损伤方面可能很重要,并且该模型能够应用于任何大鼠(可能还有小鼠)品系,未操作的对侧眼可作为内部对照。挑战包括该技术本身对手术技能要求较高、眼压反应范围较宽以及一些动物出现轻度角膜混浊。然而,仔细应用本文详述的原则并加以练习,将使大多数研究人员掌握这项用于研究青光眼性视神经损伤细胞事件的有用技能。

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