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考虑内皮褶皱的三维地形以提高器官培养角膜的细胞计数。

Considering 3D topography of endothelial folds to improve cell count of organ cultured corneas.

作者信息

Jumelle Clotilde, Garcin Thibaud, Gauthier Anne Sophie, Glasson Yaël, Bernard Aurélien, Gavet Yann, Klossa Jacques, He Zhiguo, Acquart Sophie, Gain Philippe, Thuret Gilles

机构信息

Corneal Graft Biology, Engineering and Imaging Laboratory, EA2521, SFR143, Faculty of Medicine, Federative Institute of Research in Sciences and Health Engineering, Jean Monnet University, 10, Rue de la Marandiere, 42023, Saint-Étienne Cedex 2, France.

Ecole Nationale Supérieure des Mines de Saint-Etienne, Saint-Etienne, France.

出版信息

Cell Tissue Bank. 2017 Jun;18(2):185-191. doi: 10.1007/s10561-017-9624-7. Epub 2017 Apr 10.

Abstract

The posterior side of the cornea is covered by the endothelial monolayer, which governs corneal transparency but cannot proliferate. Determination of endothelial cell density (ECD) is therefore the minimal and mandatory quality control in all eye banks. It avoids primary graft failures caused by endothelial insufficiency, and allows allocation of corneas to surgical techniques requiring different numbers of endothelial cells (ECs). Corneas stored in organ culture (17% of grafts worldwide), are characterized by heavy stromal swelling and numerous deep endothelial folds, up to 200 µm high. During microscopic en face observation, flat surfaces are thus exceptional and EC counting is biased by parallax errors, resulting in overestimated eye bank ECD (ebECD). We used a motorized transmitted light microscope to acquire Z-stacks of images every 10 µm, and processed them to reconstruct the 3D surface of the folded endothelium. This method (3D-ECD) takes into account the local point-by-point slope in order to correct ECD. On a set of 30 corneas, we compared 3D-ECD and ebECD determined on five identical zones at the center of the cornea. 3D reconstruction allowed us to visualize twice as many cells, and ebECD was 8.1 ± 4.5% (95%CI 6.4-9.7) higher than 3D-ECD, with 1744 ± 488 versus 1606 ± 473 cells/mm. 3D counting makes it possible to increase cell sampling and to correct overestimation by the conventional en face counting still routinely performed in eye banks.

摘要

角膜的后侧由单层内皮细胞覆盖,该内皮细胞层维持角膜的透明度但无法增殖。因此,测定内皮细胞密度(ECD)是所有眼库最低且必需的质量控制指标。它可避免因内皮功能不全导致的原发性移植失败,并能将角膜分配给需要不同数量内皮细胞(EC)的手术技术。储存在器官培养液中的角膜(占全球移植角膜的17%),其特征为基质严重肿胀且有大量深内皮褶皱,高达200微米。在显微镜下进行正面观察时,平坦表面非常少见,并且内皮细胞计数会因视差误差而产生偏差,导致眼库ECD(ebECD)被高估。我们使用电动透射光显微镜每隔10微米获取一系列图像堆栈,并对其进行处理以重建折叠内皮的三维表面。这种方法(3D - ECD)考虑了局部逐点斜率以校正ECD。在一组30个角膜上,我们比较了在角膜中心五个相同区域测定的3D - ECD和ebECD。三维重建使我们能够看到的细胞数量增加了一倍,ebECD比3D - ECD高8.1±4.5%(95%CI 6.4 - 9.7),分别为1744±488个细胞/平方毫米和1606±473个细胞/平方毫米。三维计数能够增加细胞采样,并校正眼库中仍常规进行的传统正面计数所导致的高估。

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