首页> 美国卫生研究院文献>Journal of the Boston Society of Medical Sciences >Neutral Sphingomyelinase (SMPD3) Deficiency Causes a Novel Form of Chondrodysplasia and Dwarfism That Is Rescued by Col2A1-Driven smpd3 Transgene Expression
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Neutral Sphingomyelinase (SMPD3) Deficiency Causes a Novel Form of Chondrodysplasia and Dwarfism That Is Rescued by Col2A1-Driven smpd3 Transgene Expression

机译:中性鞘磷脂酶(SMPD3)缺乏导致由Col2A1驱动的smpd3转基因表达挽救的软骨发育不良和侏儒症的一种新型形式

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摘要

Neutral sphingomyelinase SMPD3 (nSMase2), a sphingomyelin phosphodiesterase, resides in the Golgi apparatus and is ubiquitously expressed. Gene ablation of smpd3 causes a generalized prolongation of the cell cycle that leads to late embryonic and juvenile hypoplasia because of the SMPD3 deficiency in hypothalamic neurosecretory neurons. We show here that this novel form of combined pituitary hormone deficiency is characterized by the perturbation of the hypothalamus-pituitary growth axis, associated with retarded chondrocyte development and enchondral ossification in the epiphyseal growth plate. To study the contribution by combined pituitary hormone deficiency and by the local SMPD3 deficiency in the epiphyseal growth plate to the skeletal phenotype, we introduced the full-length smpd3 cDNA transgene under the control of the chondrocyte-specific promoter Col2a1. A complete rescue of the >smpd3−/− mouse from severe short-limbed skeletal dysplasia was achieved. The >smpd3−/− mouse shares its dwarf and chondrodysplasia phenotype with the most common form of human achondrodysplasia, linked to the fibroblast-growth-factor receptor 3 locus, not linked to deficits in the hypothalamic-pituitary epiphyseal growth plate axis. The rescue of >smpd3 in vivo has implications for future research into dwarfism and, particularly, growth and development of the skeletal system and for current screening and future treatment of combined dwarfism and chondrodysplasia.
机译:中性鞘磷脂酶SMPD3(nSMase2),一种鞘磷脂磷酸二酯酶,位于高尔基体中,并普遍存在。 smpd3的基因消融导致细胞周期的普遍延长,这是由于下丘脑神经分泌神经元的SMPD3缺乏导致晚期胚胎发育不良和青少年发育不全。我们在这里表明,这种新型的垂体激素联合缺乏症的特征在于下丘脑-垂体生长轴的扰动,与软骨细胞发育迟缓和骨growth生长板的软骨骨化有关。为了研究合并的垂体激素缺乏和骨by生长板中局部SMPD3缺乏对骨骼表型的贡献,我们在软骨细胞特异性启动子Col2a1的控制下引入了全长smpd3 cDNA转基因。从严重的短肢骨骼发育不良中完全治愈了> smpd 3 -/-小鼠。 > smpd3 -/-小鼠与人类软骨发育不良的最常见形式具有矮化和软骨发育不良的表型,与成纤维细胞生长因子受体3基因座相关,与下丘脑-垂体epi骨生长板轴缺损。体内> smpd3 的抢救对侏儒症的未来研究,尤其是骨骼系统的生长和发育,以及对侏儒症和软骨发育不良的合并症的当前筛查和未来治疗具有重要意义。

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