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成纤维细胞生长因子信号转导失调与黏多糖贮积症 II 型(MPSII)动物模型中的早期发育骨骼缺陷有关。

FGF signaling deregulation is associated with early developmental skeletal defects in animal models for mucopolysaccharidosis type II (MPSII).

机构信息

Department of Molecular Medicine, University of Padova, I-35121 Padova, Italy.

Pediatric Research Institute "Città della Speranza", I-35127 Padova, Italy.

出版信息

Hum Mol Genet. 2018 Jul 1;27(13):2262-2275. doi: 10.1093/hmg/ddy131.

Abstract

Skeletal abnormalities represent a major clinical burden in patients affected by the lysosomal storage disorder mucopolysaccharidosis type II (MPSII, OMIM #309900). While extensive research has emphasized the detrimental role of stored glycosaminoglycans (GAGs) in the bone marrow (BM), a limited understanding of primary cellular mechanisms underlying bone defects in MPSII has hampered the development of bone-targeted therapeutic strategies beyond enzyme replacement therapy (ERT). We here investigated the involvement of key signaling pathways related to the loss of iduronate-2-sulfatase activity in two different MPSII animal models, D. rerio and M. musculus. We found that FGF pathway activity is impaired during early stages of bone development in IDS knockout mice and in a newly generated Ids mutant fish. In both models the FGF signaling deregulation anticipated a slow but progressive defect in bone differentiation, regardless of any extensive GAGs storage. We also show that MPSII patient fibroblasts harboring different mutations spanning the IDS gene exhibit perturbed FGF signaling-related markers expression. Our work opens a new venue to discover possible druggable novel key targets in MPSII.

摘要

骨骼异常是黏多糖贮积症 II 型(MPSII,OMIM#309900)患者的主要临床负担。尽管大量研究强调了储存在黏多糖(GAGs)在骨髓(BM)中的有害作用,但对 MPSII 中骨骼缺陷的主要细胞机制的理解有限,阻碍了除酶替代疗法(ERT)之外的针对骨骼的治疗策略的发展。在这里,我们研究了与 IDUA 酶活性丧失相关的关键信号通路在两种不同的 MPSII 动物模型,即斑马鱼和小鼠中的参与情况。我们发现,在 IDS 基因敲除小鼠和新生成的 Ids 突变鱼的早期骨骼发育过程中,FGF 信号通路活性受损。在这两种模型中,无论是否存在广泛的 GAGs 储存,FGF 信号通路的失调都预示着骨骼分化的缓慢但进行性缺陷。我们还表明,携带跨越 IDS 基因的不同突变的 MPSII 患者成纤维细胞表现出与 FGF 信号相关的标记物表达失调。我们的工作为发现 MPSII 中可能的可成药新关键靶点开辟了新途径。

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