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正常和低磷血症小鼠中磷酸钠转运体对饮食中磷缺乏的适应性

Sodium-phosphate transporter adaptation to dietary phosphate deprivation in normal and hypophosphatemic mice.

作者信息

Collins J F, Bulus N, Ghishan F K

机构信息

Department of Pediatrics, Vanderbilt University School of Medicine, Nashville, Tennessee 37232-2576, USA.

出版信息

Am J Physiol. 1995 Jun;268(6 Pt 1):G917-24. doi: 10.1152/ajpgi.1995.268.6.G917.

DOI:10.1152/ajpgi.1995.268.6.G917
PMID:7611412
Abstract

The X-linked hypophosphatemic (Hyp) mouse is a model for hypophosphatemic vitamin D-resistant rickets and is a homologue of human X-linked hypophosphatemia. The defect in the Hyp mouse appears to be related to decreased renal tubular reabsorption of P(i) via the renal brush-border membrane (Na(+)-P(i)) transporter. Dietary P(i) deprivation upregulates Na(+)-P(i) transport activity in brush-border membrane vesicles (BBMV) isolated from both normal and Hyp mice; however, the molecular mechanisms underlying this phenomenon are not known. The current studies were designed to investigate the effect of P(i) deprivation on the renal Na(+)-P(i) transporter. Low P(i) diet upregulated Na(+)-P(i) transporter activity in isolated BBMV by 2.1-fold in normal and Hyp mice (n = 3, P = 0.01). Low P(i) diet also induced a 1.9 +/- 0.3-fold increase in normal mice and 2.9 +/- 0.4-fold increase in Hyp mice in Na(+)-P(i) transporter message levels (n = 3, P = 0.028). The increase in message level encoding the Na(+)-P(i) transporter stimulated increased Na(+)-dependent P(i) uptake by Xenopus laevis oocytes when poly(A)+ RNA was injected into them from mice on low P(i) diet (approximately 1.67-fold in normal mice and 1.33-fold in Hyp mice). Immunoreactive protein levels increased 2.3 +/- 0.4-fold in normal mice and 8.2 +/- 0.5 in the Hyp mouse kidney cortexes (n = 3, P = 0.0001) in response to dietary P(i) deprivation.(ABSTRACT TRUNCATED AT 250 WORDS)

摘要

X连锁低磷血症(Hyp)小鼠是低磷性维生素D抵抗性佝偻病的模型,是人类X连锁低磷血症的同源物。Hyp小鼠的缺陷似乎与通过肾刷状缘膜(Na(+)-P(i))转运体导致的肾小管对无机磷(P(i))重吸收减少有关。饮食中缺乏P(i)会上调从正常和Hyp小鼠分离的刷状缘膜囊泡(BBMV)中的Na(+)-P(i)转运活性;然而,这一现象背后的分子机制尚不清楚。当前的研究旨在调查P(i)缺乏对肾Na(+)-P(i)转运体的影响。低P(i)饮食使正常和Hyp小鼠分离的BBMV中的Na(+)-P(i)转运体活性上调2.1倍(n = 3,P = 0.01)。低P(i)饮食还使正常小鼠的Na(+)-P(i)转运体信使水平增加1.9±0.3倍,Hyp小鼠增加2.9±0.4倍(n = 3,P = 0.028)。当将来自低P(i)饮食小鼠的多聚腺苷酸加尾RNA注射到非洲爪蟾卵母细胞中时,编码Na(+)-P(i)转运体的信使水平增加刺激了非洲爪蟾卵母细胞对Na(+)依赖性P(i)的摄取增加(正常小鼠约为1.67倍,Hyp小鼠为1.33倍)。响应饮食中P(i)缺乏,正常小鼠肾皮质中的免疫反应性蛋白水平增加2.3±0.4倍,Hyp小鼠增加8.2±0.5倍(n = 3,P = 0.0001)。(摘要截短于250字)

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