人诱导多能干细胞衍生的贴壁三维皮肤毛囊类器官的生成

Mai Tran Thi Nhu, Ulziituya Batjargal, H. Song, Jin-Man Kim, I. Kwak, Byoung-San Moon
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摘要

对于遭受严重脱发的患者来说,再生毛囊(HFs)是一项关键的医疗需求。为了产生具有多能干细胞的等效毛发皮肤系统,可以模仿天然组织的复杂性,漂浮培养已被用作标准方法;然而,在长期培养过程中,类器官的异质性和处理难度增加等局限性仍有待改善。在这里,我们设计了一种漂浮贴壁组合培养系统,从人诱导的多能干细胞(hiPSCs)中建立皮肤HF类器官。具体来说,胚状体是在自由漂浮的环境中产生的,然后是在贴壁条件下发生的诱导过程。通过我们的方法,头发细菌样的芽可以更快地伸出和延伸。培养100天后,从定量聚合酶链反应和免疫组织化学分析可以看出,成熟的囊性皮肤类器官分层形成表皮、真皮层和外根鞘。真皮凝聚细胞(Sox2+、PDGFRα+、P75+)是HF的前体,与HF干细胞(NFATC1+、LGR5+)、推定的鼓胀干细胞(LHX2+、KRT15+)和黑色素细胞(PMEL+)一起检测。值得注意的是,我们构建的HFs可以再现天然组织的感觉功能,正如感觉神经元和雪旺细胞与HF细胞和表皮祖细胞连接的网络所示。总之,我们的研究结果证明了一种简化和有效地从hipsc诱导皮肤HF的新方案,从而有助于优化HF生长的研究和探索治疗脱发的新治疗策略。
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Generation of human-induced pluripotent stem cell-derived adherent 3-dimensional skin hair-follicle organoids
Regenerating hair follicles (HFs) is a critical medical need for patients who suffer from serious hair loss. To generate equivalent hair-bearing skin systems that could mimic the complexity of native tissues with pluripotent stem cells, floating culture has been employed as a standard method; however, it is still necessary to improve limitations such as the heterogeneity of organoids and the difficulty of handling them, which increases during long-term culture. Here, we devise a floating-adherent combinatory culture system to establish skin HF organoids from human-induced pluripotent stem cells (hiPSCs). Specifically, embryoid bodies were generated in a free-floating environment, followed by the induction process, which occurred in adherent conditions. With our approach, hair germ-like buds were shown to protrude and extend faster. After 100 days of culture, mature cystic skin organoids stratified to form the epidermis, dermis, and outer root sheath, as evident from quantitative polymerase chain reaction and immunohistochemistry analysis. Dermal condensate cells (Sox2+, PDGFRα+, P75+), which are the precursors of HFs, were detected together with HF stem cells (NFATC1+, LGR5+), putative bulge stem cells (LHX2+, KRT15+) and melanocytes (PMEL+). Notably, our constructed HFs could recapitulate the sensory function of native tissues, as illustrated by the formation of a network of sensory neurons and Schwann cells connecting towards HF cells and epidermal progenitors. In summary, our results demonstrate a new protocol for the simplified and efficient induction of skin HFs from hiPSCs, thereby contributing to research on optimizing HF growth and investigating novel therapeutic strategies to treat alopecia.
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