Use of induced pluripotent stem cells to investigate the effects of purine nucleoside phosphorylase deficiency on neuronal development

IF 0.3 Q4 IMMUNOLOGY
Michael Tsui, J. Biro, J. Chan, W. Min, E. Grunebaum
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引用次数: 3

Abstract

Background: Inherited defects in the function of the purine nucleoside phosphorylase (PNP) enzyme can cause severe T cell immune deficiency and early death from infection, autoimmunity, or malignancy. In addition, more than 50% of patients suffer diverse non-infectious neurological complications. However the cause for the neurological abnormalities are not known. Objectives: Differentiate induced pluripotent stem cells (iPSC) from PNP-deficient patients into neuronal cells to better understand the effects of impaired purine metabolism on neuronal development. Methods: Sendai virus was used to generate pluripotent stem cells from PNP-deficient and healthy control lymphoblastoid cells. Cells were differentiated into neuronal cells through the formation of embryoid bodies. Results: After demonstration of pluripotency, normal karyotype, and retention of the PNP deficiency state, iPSC were differentiated into neuronal cells. PNP-deficient neuronal cells had reduced soma and nuclei size in comparison to cells derived from healthy controls. Spontaneous apoptosis, determined by Caspase-3 expression, was increased in PNP-deficient cells. Conclusions: iPSC from PNP-deficient patients can be differentiated into neuronal cells, thereby providing an important tool to study the effects of impaired purine metabolism on neuronal development and potential treatments. Statement of novelty: We report here the first generation and use of neuronal cells derived from induced pluripotent stem cells to model human PNP deficiency, thereby providing an important tool for better understanding and management of this condition.
利用诱导多能干细胞研究嘌呤核苷磷酸化酶缺乏对神经元发育的影响
背景:嘌呤核苷磷酸化酶(PNP)功能的遗传缺陷可导致严重的T细胞免疫缺陷,并因感染、自身免疫或恶性肿瘤而过早死亡。此外,超过50%的患者患有各种非传染性神经系统并发症。然而,神经系统异常的原因尚不清楚。目的:将PNP缺陷患者的诱导多能干细胞(iPSC)分化为神经元细胞,以更好地了解嘌呤代谢受损对神经元发育的影响。方法:用仙台病毒从PNP缺陷和健康对照淋巴母细胞中产生多能干细胞。细胞通过胚状体的形成分化为神经元细胞。结果:在证明多能性、正常核型和PNP缺乏状态保持后,iPSC分化为神经元细胞。与来自健康对照的细胞相比,PNP缺陷的神经元细胞具有减小的胞体和细胞核大小。在PNP缺乏的细胞中,由Caspase-3表达确定的自发凋亡增加。结论:PNP缺乏患者的iPSC可以分化为神经元细胞,从而为研究嘌呤代谢受损对神经元发育的影响和潜在的治疗方法提供了重要工具。新颖性声明:我们在这里报道了从诱导多能干细胞衍生的神经元细胞的第一代和使用,以模拟人类PNP缺乏症,从而为更好地理解和管理这种情况提供了一个重要工具。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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