Bai Xiuying, Miao Dengshun, Panda Dibiyendu, Grady Scott, McKee Marc D, Goltzman David, Karaplis Andrew C
Division of Endocrinology, Department of Medicine, Lady Davis Institute for Medical Research, McGill University, 3755 Cote Sainte Catherine Road, Montréal, Quebec, Canada H3T 1E2.
Mol Endocrinol. 2002 Dec;16(12):2913-25. doi: 10.1210/me.2002-0113.
Inactivating mutations and/or deletions of PHEX/Phex (phosphate-regulating gene with homologies to endopeptidases on the X chromosome) are responsible for X-linked hypophosphatemic rickets in humans and in the murine homolog Hyp. The predominant osteoblastic expression of Phex has implicated a primary metabolic osteoblast defect in the pathophysiology of this disorder. By targeting PHEX expression to osteoblasts in the Hyp genetic background, we aimed to correct the corresponding biochemical and morphological abnormalities and obtain information on their pathogenetic mechanism. When transgene Phex expression, driven by a mouse pro-alpha1(I) collagen gene promoter, was crossed into the Hyp background, it improved the defective mineralization of bone and teeth but failed to correct the hypophosphatemia and altered vitamin D metabolism associated with the disorder. Ex vivo bone marrow cultures confirmed the amelioration in the Hyp-associated matrix mineralization defect after Phex expression. These findings suggest that while the Hyp bone and teeth abnormalities partially correct after PHEX gene transfer, additional factors and/or sites of PHEX expression are likely critical for the elaboration of the appropriate molecular signals that alter renal phosphate handling and vitamin D metabolism in this disorder.
PHEX/Phex(与X染色体上的内肽酶具有同源性的磷酸盐调节基因)的失活突变和/或缺失是导致人类和小鼠同源物Hyp中X连锁低磷性佝偻病的原因。Phex在成骨细胞中的主要表达表明该疾病的病理生理学中存在原发性代谢性成骨细胞缺陷。通过在Hyp基因背景下将PHEX表达靶向成骨细胞,我们旨在纠正相应的生化和形态学异常,并获取有关其发病机制的信息。当由小鼠原α1(I)胶原基因启动子驱动的转基因Phex表达与Hyp背景杂交时,它改善了骨骼和牙齿的矿化缺陷,但未能纠正低磷血症以及与该疾病相关的维生素D代谢改变。体外骨髓培养证实了Phex表达后Hyp相关基质矿化缺陷的改善。这些发现表明,虽然PHEX基因转移后Hyp的骨骼和牙齿异常部分得到纠正,但PHEX表达的其他因素和/或位点可能对于产生改变该疾病中肾脏磷酸盐处理和维生素D代谢的适当分子信号至关重要。