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基于 hPSC 的平台,用于发现影响人类β细胞和多巴胺神经元存活的基因-环境相互作用。

A hPSC-based platform to discover gene-environment interactions that impact human β-cell and dopamine neuron survival.

机构信息

Department of Surgery, Weill Cornell Medical College, 1300 York Ave, New York, 10065, NY, USA.

The Center for Stem Cell Biology, Sloan-Kettering Institute for Cancer Research, New York, NY, 10065, USA.

出版信息

Nat Commun. 2018 Nov 16;9(1):4815. doi: 10.1038/s41467-018-07201-1.

Abstract

Common disorders, including diabetes and Parkinson's disease, are caused by a combination of environmental factors and genetic susceptibility. However, defining the mechanisms underlying gene-environment interactions has been challenging due to the lack of a suitable experimental platform. Using pancreatic β-like cells derived from human pluripotent stem cells (hPSCs), we discovered that a commonly used pesticide, propargite, induces pancreatic β-cell death, a pathological hallmark of diabetes. Screening a panel of diverse hPSC-derived cell types we extended this observation to a similar susceptibility in midbrain dopamine neurons, a cell type affected in Parkinson's disease. We assessed gene-environment interactions using isogenic hPSC lines for genetic variants associated with diabetes and Parkinson's disease. We found GSTT1 pancreatic β-like cells and dopamine neurons were both hypersensitive to propargite-induced cell death. Our study identifies an environmental chemical that contributes to human β-cell and dopamine neuron loss and validates a novel hPSC-based platform for determining gene-environment interactions.

摘要

常见疾病,包括糖尿病和帕金森病,是由环境因素和遗传易感性共同引起的。然而,由于缺乏合适的实验平台,定义基因-环境相互作用的机制一直具有挑战性。我们使用源自人类多能干细胞(hPSC)的胰岛β样细胞发现,一种常用的杀虫剂丙溴磷会诱导胰岛β细胞死亡,这是糖尿病的一个病理特征。通过筛选一组不同的 hPSC 衍生细胞类型,我们将这一观察结果扩展到帕金森病中受影响的中脑细胞多巴胺神经元的类似易感性。我们使用与糖尿病和帕金森病相关的遗传变异的同基因 hPSC 系评估基因-环境相互作用。我们发现 GSTT1 胰岛β样细胞和多巴胺神经元对丙溴磷诱导的细胞死亡均高度敏感。我们的研究确定了一种环境化学物质,它会导致人类β细胞和多巴胺神经元丧失,并验证了一种用于确定基因-环境相互作用的新型 hPSC 为基础的平台。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/df9d/6240096/bf198a90a071/41467_2018_7201_Fig1_HTML.jpg

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