Zhang Suai, Ye Ke, Gao Guanjie, Song Xiaojing, Xu Ping, Zeng Jingrong, Xie Bingbing, Zheng Dandan, He Liwen, Ji Jianping, Zhong Xiufeng
State Key Laboratory of Ophthalmology, Zhongshan Ophthalmic Center, Sun Yat-sen University, Guangdong Provincial Key Laboratory of Ophthalmology and Visual Science, Guangzhou, China.
State Key Laboratory of Ophthalmology, Zhongshan Ophthalmic Center, Sun Yat-sen University, Guangdong Provincial Key Laboratory of Ophthalmology and Visual Science, Guangzhou, China.
Acta Biomater. 2022 Oct 1;151:183-196. doi: 10.1016/j.actbio.2022.07.064. Epub 2022 Aug 3.
Human pluripotent stem cell-derived retinal pigment epithelium (iRPE) is an attractive cell source for disease modeling and cell replacement therapy of retinal disorders with RPE defects. However, there are still challenges to develop appropriate culture conditions close to in vivo microenvironment to generate iRPE sheets, which mimic more faithfully the characteristics and functions of the human RPE cells. Here, we developed a simple, novel platform to construct authentic iRPE sheets using human amniotic membrane (hAM) as a natural scaffold. The decellularized hAM (dAM) provided a Bruch's membrane (BM)-like bioscaffold, supported the iRPE growth and enhanced the epithelial features, polarity distribution and functional features of iRPE cells. Importantly, RNA-seq analysis was performed to compare the transcriptomes of iRPE cells cultured on different substrates, which revealed the potential mechanism that dAM supported and promoted iRPE growth was the inhibition of epithelial-mesenchymal transition (EMT). The tissue-engineered iRPE sheets survived and kept monolayer when transplanted into the subretinal space of rabbits. All together, our results indicate that the dAM imitating the natural BM allows for engineering authentic human RPE sheets, which will provide valuable biomaterials for disease modeling, drug screening and cell replacement therapy of retinal degenerative diseases. STATEMENT OF SIGNIFICANCE: Engineered RPE sheets have a great advantage over RPE cell suspension for transplantation as they support RPE growth in an intact monolayer which RPE functions are dependent on. The substrates for RPE culture play a critical role to maintain the physiological functions of the RPE in stem cell therapies for patients with retinal degeneration. In this study, we constructed engineered iRPE sheets on the decellularized human amniotic membrane scaffolds, which contributed to enhancing epithelial features, polarity distribution and functional features of iRPE. dAM exhibited the ability of anti-epithelial mesenchymal transition to support iRPE growth. Furthermore, the results of transplantation in vivo demonstrated the feasibility of iRPE sheets in retina regenerative therapy. Engineering RPE sheets on dAM is a promising strategy to facilitate the development of iRPE replacement therapy and retinal disease modeling.
人多能干细胞衍生的视网膜色素上皮细胞(iRPE)是用于视网膜疾病建模以及对存在RPE缺陷的视网膜疾病进行细胞替代治疗的一种有吸引力的细胞来源。然而,要开发接近体内微环境的合适培养条件以生成iRPE片层仍面临挑战,这些片层能更忠实地模拟人类RPE细胞的特征和功能。在此,我们开发了一个简单、新颖的平台,使用人羊膜(hAM)作为天然支架构建真实的iRPE片层。脱细胞的hAM(dAM)提供了类似布鲁赫膜(BM)的生物支架,支持iRPE生长,并增强了iRPE细胞的上皮特征、极性分布和功能特征。重要的是,进行了RNA测序分析以比较在不同底物上培养 的iRPE细胞的转录组,这揭示了dAM支持并促进iRPE生长的潜在机制是抑制上皮-间质转化(EMT)。当将组织工程化的iRPE片层移植到兔的视网膜下间隙时,它们能够存活并保持单层状态。总之,我们的结果表明,模仿天然BM的dAM能够构建真实的人RPE片层,这将为视网膜退行性疾病的疾病建模、药物筛选和细胞替代治疗提供有价值的生物材料。意义声明:工程化的RPE片层在移植方面比RPE细胞悬液具有很大优势,因为它们能以完整的单层形式支持RPE生长,而RPE的功能依赖于此。在针对视网膜退行性疾病患者的干细胞治疗中,RPE培养的底物对于维持RPE的生理功能起着关键作用。在本研究中,我们在脱细胞的人羊膜支架上构建了工程化的iRPE片层,这有助于增强iRPE的上皮特征、极性分布和功能特征。dAM表现出抗上皮间质转化以支持iRPE生长的能力。此外,体内移植结果证明了iRPE片层在视网膜再生治疗中的可行性。在dAM上构建工程化的RPE片层是促进iRPE替代治疗和视网膜疾病建模发展的一种有前景的策略。