新的戈谢病巨噬细胞模型为药物开发提供了新的工具。

Macrophage Pub Date : 2015-04-07 DOI:10.14800/MACROPHAGE.712
Daniel K. Borger, E. Sidransky, E. Aflaki
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引用次数: 5

摘要

戈谢病是一种遗传性酶缺乏症,导致巨噬细胞和某些情况下神经元中特异性糖脂的溶酶体积聚。虽然目前的治疗方法在减少巨噬细胞中的糖脂储存方面是有效的,但它们在治疗疾病的神经系统表现方面是昂贵和无效的,这促使人们寻找新的治疗方法。此外,与戈谢病相关的基因GBA1突变是帕金森病及相关疾病发展的重要危险因素,这一关联进一步提高了人们对戈谢病研究的兴趣。然而,由于缺乏合适的戈谢病细胞模型,治疗策略的发展受到阻碍。我们建立了两种新的戈谢病巨噬细胞模型,一种是通过戈谢病患者外周血单核细胞的分化,另一种是通过来自患者成纤维细胞的诱导多能干细胞的分化。两种疾病模型都表现出相似的细胞表型,当暴露于外源性脂质来源(如红细胞膜)时,表现出广泛的糖脂储存。此外,我们利用这些模型证实了一种新型小分子在清除糖脂储存和恢复正常巨噬细胞功能方面的功效。这些结果证明了这些模型在探索戈谢病和相关疾病的新疗法方面的有用性。
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New macrophage models of Gaucher disease offer new tools for drug development.
Gaucher disease is an inherited enzyme deficiency resulting in the lysosomal accumulation of specific glycolipids in macrophages and, in some cases, neurons. While current treatments are effective at reducing this glycolipid storage in macrophages, they are expensive and ineffective in treating neurological manifestations of the disease, driving the search for novel therapeutics. Moreover, mutations in GBA1, the gene implicated in Gaucher disease, are an important risk factor for the development of Parkinson disease and related disorders, an association that has further heightened interest in Gaucher disease research. However, the development of therapeutic strategies has been hampered by a shortage of appropriate cellular models of Gaucher disease. We have generated two novel macrophage models of Gaucher disease, one through the differentiation of peripheral blood monocytes from patients with Gaucher disease and the other through the differentiation of induced pluripotent stem cells derived from patient fibroblasts. Both disease models demonstrate similar cellular phenotypes and exhibit extensive glycolipid storage when exposed to exogenous lipid sources such as erythrocyte membranes. Furthermore, we have used these models to confirm the efficacy of a novel small molecule in clearing glycolipid storage and restoring normal macrophage function. These results demonstrate the usefulness of these models in exploring new therapeutics for Gaucher disease and related disorders.
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