An induced pluripotent stem cell model of Schwann cell differentiation reveals NF2- related gene regulatory networks.

Olivia Lazaro, Sihong Li, William Carter, Jake Smiley, Oluwamayowa Awosika, Sylvia Robertson, Angela Haskell, Raven Hinkel, Brooke E Hickey, Steven P Angus, Austin House, D Wade Clapp, Abdul Q Syed, Travis S Johnson, Steven D Rhodes
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Abstract

Schwann cells are vital to development and maintenance of the peripheral nervous system and their dysfunction has been implicated in a range of neurological and neoplastic disorders, including NF2-related schwannomatosis (NF2-SWN). We have developed a novel human induced pluripotent stem cell (hiPSC) model for the study of Schwann cell differentiation in health and disease. We performed transcriptomic, immunofluorescence, and morphological analysis of hiPSC derived Schwann cell precursors (SPCs) and terminally differentiated Schwann cells (SCs) representing distinct stages of development. To further validate our findings, we performed integrated, cross-species analyses across multiple external datasets at bulk and single cell resolution. Our hiPSC model of Schwann cell development shared overlapping gene expression signatures with human amniotic mesenchymal stem cell (hAMSCs) derived SCs and in vivo mouse models, but also revealed unique features that may reflect species-specific aspects of Schwann cell biology. Moreover, we have identified gene co-expression modules that are dynamically regulated during hiPSC to SC differentiation associated with ear and neural development, cell fate determination, the NF2 gene, and extracellular matrix (ECM) organization. Through integrated analysis of multiple datasets and genetic disruption of NF2 via CRISPR-Cas9 gene editing in hiPSC derived SCPs, we have identified a series of novel ECM associated genes regulated by Merlin. Our hiPSC model further provides a tractable platform for studying Schwann cell development in the context of rare diseases such as NF2-SWN which lack effective medical therapies.

一个诱导多能干细胞模型的雪旺细胞分化揭示NF2相关基因调控网络。
雪旺细胞对周围神经系统的发育和维持至关重要,其功能障碍与一系列神经和肿瘤疾病有关,包括nf2相关的神经鞘瘤病(NF2-SWN)。我们开发了一种新的人类诱导多能干细胞(hiPSC)模型,用于研究雪旺细胞在健康和疾病中的分化。我们对hiPSC衍生的雪旺细胞前体(SPCs)和代表不同发育阶段的终末分化雪旺细胞(SCs)进行了转录组学、免疫荧光和形态学分析。为了进一步验证我们的发现,我们在大量和单细胞分辨率下对多个外部数据集进行了综合的跨物种分析。我们的雪旺细胞发育的hiPSC模型与人羊膜间充质干细胞(hAMSCs)衍生的SCs和体内小鼠模型共享重叠的基因表达特征,但也揭示了可能反映雪旺细胞生物学物种特异性方面的独特特征。此外,我们已经确定了在hiPSC向SC分化过程中与耳朵和神经发育、细胞命运决定、NF2基因和细胞外基质(ECM)组织相关的动态调控的基因共表达模块。通过对多个数据集的综合分析,以及在hiPSC衍生的SCPs中通过CRISPR-Cas9基因编辑对NF2进行遗传破坏,我们已经确定了一系列由Merlin调控的新的ECM相关基因。我们的hiPSC模型进一步为研究罕见疾病(如NF2-SWN)中雪旺细胞的发育提供了一个易于处理的平台,这些疾病缺乏有效的药物治疗。
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