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眼库供体角膜的暗视野生物显微镜检查。

Darkfield biomicrography of eye bank donor corneas.

作者信息

Merin L M, Brown M F, Howdeshell L L

机构信息

Jones Eye Institute, University of Arkansas for Medical Sciences, Little Rock, USA.

出版信息

Cornea. 2001 Mar;20(2):210-3. doi: 10.1097/00003226-200103000-00021.

Abstract

PURPOSE

Evaluation of donated corneal tissue for transplantation relies on visual inspection by slit lamp biomicroscopy and specular micrography at the eye bank and then slit lamp biomicroscopy by the transplanting surgeon. An overall grade of tissue quality is assigned, but endpoints for biomicroscopic assessment are not universally accepted. We investigated the application of darkfield illumination to evaluate corneal transparency and provide a more standardized and reproducible method of tissue examination.

METHODS

We built a fixture to securely hold a standard cornea storage container, and used two versions of photographic slit lamp biomicroscopes to examine donated corneal tissue with darkfield illumination.

RESULTS

In every cornea we examined, darkfield illumination portrayed increased subject detail as compared with conventional methods of biomicroscopy. The epithelium appeared as a richly textured "ground-glass" field. We noted variations in transparency that could not be detected with conventional slit lamp biomicroscopy. The actual surface area of lesions such as cornea verticillata and herpetic dendrites appeared larger in darkfield illumination because of its high sensitivity to subtle alterations of transparency.

CONCLUSION

Darkfield biomicrography of donated corneal tissue permits evaluation of the entire surface area, measurement of localized lesions of varying brightness, and assessment of epithelial cell coverage. As such, it extends our understanding of tissue clarity. Coupled with digital imaging technology, darkfield biomicrographs could be shared on the Internet and would allow transplanting surgeons to review tissue before selecting it for surgery. This technique could also be used in pharmaceutical research to measure changes in lesion size after therapy and could be incorporated into an eye bank quality assurance program. A new challenge for eye banking is to identify corneas in vitro that have undergone refractive surgeries such as laser in situ keratomileusis and photorefractive keratectomy-surgical alterations not easily seen at the slit lamp. Darkfield biomicrography may also be useful in detecting these lesions.

摘要

目的

用于移植的捐赠角膜组织的评估在眼库中依靠裂隙灯生物显微镜检查和镜面显微镜检查进行目视检查,然后由移植外科医生进行裂隙灯生物显微镜检查。会给出一个组织质量的总体等级,但生物显微镜评估的终点并未得到普遍认可。我们研究了暗视野照明在评估角膜透明度方面的应用,并提供一种更标准化和可重复的组织检查方法。

方法

我们制作了一个固定装置来牢固地固定标准角膜储存容器,并使用两种版本的摄影裂隙灯生物显微镜,通过暗视野照明检查捐赠的角膜组织。

结果

在我们检查的每只角膜中,与传统生物显微镜检查方法相比,暗视野照明呈现出更多的主体细节。上皮细胞呈现为纹理丰富的“毛玻璃”区域。我们注意到了传统裂隙灯生物显微镜检查无法检测到的透明度变化。由于对透明度的细微变化高度敏感,在暗视野照明下,诸如角膜涡状营养不良和疱疹性树枝状角膜炎等病变的实际表面积显得更大。

结论

对捐赠角膜组织进行暗视野生物显微镜检查能够评估整个表面积、测量不同亮度的局部病变以及评估上皮细胞覆盖情况。因此,它扩展了我们对组织清晰度的理解。结合数字成像技术,暗视野生物显微镜图像可以在互联网上共享,并能让移植外科医生在选择组织进行手术前对其进行复查。这项技术还可用于药物研究,以测量治疗后病变大小的变化,并可纳入眼库质量保证计划。眼库面临的一个新挑战是在体外识别接受过诸如准分子原位角膜磨镶术和光性屈光性角膜切削术等屈光手术的角膜——这些手术改变在裂隙灯下不易看清。暗视野生物显微镜检查在检测这些病变方面可能也有用处。

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