Faculty of Biomedical Sciences and Engineering, BioMediTech, Tampere University of Technology, Tampere, Finland.
Faculty of Medicine and Life Sciences, BioMediTech, University of Tampere, Tampere, Finland.
Stem Cells Transl Med. 2019 Feb;8(2):179-193. doi: 10.1002/sctm.18-0026. Epub 2018 Nov 4.
Retinal pigment epithelium (RPE) performs important functions for the maintenance of photoreceptors and vision. Malfunctions within the RPE are implicated in several retinal diseases for which transplantations of stem cell-derived RPE are promising treatment options. Their success, however, is largely dependent on the functionality of the transplanted cells. This requires correct cellular physiology, which is highly influenced by the various ion channels of RPE, including voltage-gated Ca (Ca ) channels. This study investigated the localization and functionality of Ca channels in human embryonic stem cell (hESC)-derived RPE. Whole-cell patch-clamp recordings from these cells revealed slowly inactivating L-type currents comparable to freshly isolated mouse RPE. Some hESC-RPE cells also carried fast transient T-type resembling currents. These findings were confirmed by immunostainings from both hESC- and mouse RPE that showed the presence of the L-type Ca channels Ca 1.2 and Ca 1.3 as well as the T-type Ca channels Ca 3.1 and Ca 3.2. The localization of the major subtype, Ca 1.3, changed during hESC-RPE maturation co-localizing with pericentrin to the base of the primary cilium before reaching more homogeneous membrane localization comparable to mouse RPE. Based on functional assessment, the L-type Ca channels participated in the regulation of vascular endothelial growth factor secretion as well as in the phagocytosis of photoreceptor outer segments in hESC-RPE. Overall, this study demonstrates that a functional machinery of voltage-gated Ca channels is present in mature hESC-RPE, which is promising for the success of transplantation therapies. Stem Cells Translational Medicine 2019;8:179&15.
视网膜色素上皮(RPE)对维持光感受器和视力起着重要作用。RPE 内的功能障碍与几种视网膜疾病有关,干细胞衍生的 RPE 移植是很有前途的治疗选择。然而,它们的成功在很大程度上取决于移植细胞的功能。这需要正确的细胞生理学,这受到 RPE 的各种离子通道的强烈影响,包括电压门控钙(Ca )通道。本研究调查了人胚胎干细胞(hESC)衍生的 RPE 中 Ca 通道的定位和功能。这些细胞的全细胞膜片钳记录显示出与新鲜分离的小鼠 RPE 相当的缓慢失活的 L 型电流。一些 hESC-RPE 细胞还携带类似于快速瞬态 T 型的电流。这些发现通过来自 hESC 和小鼠 RPE 的免疫染色得到了证实,这些免疫染色显示存在 L 型 Ca 通道 Ca 1.2 和 Ca 1.3 以及 T 型 Ca 通道 Ca 3.1 和 Ca 3.2。主要亚型 Ca 1.3 的定位在 hESC-RPE 成熟过程中发生变化,与中心粒周围蛋白一起定位于初级纤毛的基部,然后达到与小鼠 RPE 相当的更均匀的膜定位。基于功能评估,L 型 Ca 通道参与了 hESC-RPE 中血管内皮生长因子分泌的调节以及光感受器外节的吞噬作用。总的来说,这项研究表明,成熟的 hESC-RPE 中存在功能性电压门控 Ca 通道机制,这对于移植治疗的成功是有希望的。《干细胞转化医学》2019 年;8:179&15。