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Renal Na(+)-phosphate cotransport in murine X-linked hypophosphatemic rickets. Molecular characterization.
Tenenhouse HS, Werner A, Biber J, Ma S, Martel J, Roy S, Murer H.
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The X-linked Hyp mouse is characterized by a specific defect in proximal tubular phosphate (Pi) reabsorption that is associated with a decrease in Vmax of the high affinity Na(+)-Pi cotransport system in the renal brush border membrane. To understand the mechanism for Vmax reduction, we examined the effect of the Hyp mutation on renal expression of Na(+)-Pi cotransporter mRNA and protein. Northern hybridization of renal RNA with a rat, renal-specific Na(+)-Pi cotransporter cDNA probe (NaPi-2) (Magagnin et al. 1993. Proc. Natl. Acad. Sci. USA. 90:5979-5983.) demonstrated a reduction in a 2.6-kb transcript in kidneys of Hyp mice relative to normal littermates (NaPi-2/beta-actin mRNA = 57 +/- 6% of normal in Hyp mice, n = 6, P < 0.01). Na(+)-Pi cotransport, but not Na(+)-sulfate cotransport, was approximately 50% lower in Xenopus oocytes injected with renal mRNA extracted from Hyp mice when compared with that from normal mice. Hybrid depletion experiments documented that the mRNA-dependent expression of Na(+)-Pi cotransport in oocytes was related to NaPi-2. Western analysis demonstrated that NaPi-2 protein is also significantly reduced in brush border membranes of Hyp mice when compared to normals. The present data demonstrate that the specific reduction in renal Na(+)-Pi cotransport in brush border membranes of Hyp mice can be ascribed to a proportionate decrease in the abundance of Na(+)-Pi cotransporter mRNA and protein.
Bell,
Primary cultures of renal epithelial cells from X-linked hypophosphatemic (Hyp) mice express defects in phosphate transport and vitamin D metabolism.
1988, Pubmed
Bell,
Primary cultures of renal epithelial cells from X-linked hypophosphatemic (Hyp) mice express defects in phosphate transport and vitamin D metabolism.
1988,
Pubmed Biber,
Localization of NaPi-1, a Na/Pi cotransporter, in rabbit kidney proximal tubules. II. Localization by immunohistochemistry.
1993,
Pubmed Chirgwin,
Isolation of biologically active ribonucleic acid from sources enriched in ribonuclease.
1979,
Pubmed Cleveland,
Number and evolutionary conservation of alpha- and beta-tubulin and cytoplasmic beta- and gamma-actin genes using specific cloned cDNA probes.
1980,
Pubmed Cowgill,
Evidence for an intrinsic renal tubular defect in mice with genetic hypophosphatemic rickets.
1979,
Pubmed Custer,
Localization of NaPi-1, a Na-Pi cotransporter, in rabbit kidney proximal tubules. I. mRNA localization by reverse transcription/polymerase chain reaction.
1993,
Pubmed
,
Xenbase Dawson,
Ecto-5'-nucleotidase: localization in rat kidney by light microscopic histochemical and immunohistochemical methods.
1989,
Pubmed Econs,
Multilocus mapping of the X-linked hypophosphatemic rickets gene.
1992,
Pubmed Eicher,
Hypophosphatemia: mouse model for human familial hypophosphatemic (vitamin D-resistant) rickets.
1976,
Pubmed Ford,
Abnormal proximal tubule apical membrane protein composition in X-linked hypophosphatemic mice.
1991,
Pubmed Giasson,
Micropuncture study of renal phosphorus transport in hypophosphatemic vitamin D resistant rickets mice.
1977,
Pubmed Hammerman,
Pi transport, phosphorylation, and dephosphorylation in renal membranes from HYP/Y mice.
1983,
Pubmed Harvey,
Renal Na(+)-phosphate cotransport in X-linked Hyp mice responds appropriately to Na+ gradient, membrane potential, and pH.
1992,
Pubmed Kos,
Localization of a renal sodium-phosphate cotransporter gene to human chromosome 5q35.
1994,
Pubmed Laemmli,
Cleavage of structural proteins during the assembly of the head of bacteriophage T4.
1970,
Pubmed Magagnin,
Expression cloning of human and rat renal cortex Na/Pi cotransport.
1993,
Pubmed
,
Xenbase Markovich,
Expression cloning of rat renal Na+/SO4(2-) cotransport.
1993,
Pubmed
,
Xenbase Meyer,
Parabiosis suggests a humoral factor is involved in X-linked hypophosphatemia in mice.
1989,
Pubmed Meyer,
The renal phosphate transport defect in normal mice parabiosed to X-linked hypophosphatemic mice persists after parathyroidectomy.
1989,
Pubmed Meyerhof,
Identification of G protein-coupled receptors by RNase H-mediated hybrid depletion using Xenopus laevis oocytes as expression system.
1990,
Pubmed
,
Xenbase Nakagawa,
Characterization of the defect in the Na(+)-phosphate transporter in vitamin D-resistant hypophosphatemic mice.
1991,
Pubmed
,
Xenbase Nesbitt,
Crosstransplantation of kidneys in normal and Hyp mice. Evidence that the Hyp mouse phenotype is unrelated to an intrinsic renal defect.
1992,
Pubmed Qiu,
Parental origin of mutant allele does not explain absence of gene dose in X-linked Hyp mice.
1993,
Pubmed Scriver,
Conserved loci on the X chromosome confer phosphate homeostasis in mice and humans.
1990,
Pubmed Tenenhouse,
The defect in transcellular transport of phosphate in the nephron is located in brush-border membranes in X-linked hypophosphatemia (Hyp mouse model).
1978,
Pubmed Tenenhouse,
Sulfate inhibits [14C]phosphonoformic acid binding to renal brush-border membranes.
1990,
Pubmed Tenenhouse,
Normal molecular size of the Na(+)-phosphate cotransporter and normal Na(+)-dependent binding of phosphonoformic acid in renal brush border membranes of X-linked Hyp mice.
1990,
Pubmed Tenenhouse,
Renal brush-border membrane Na(+)-sulfate cotransport: stimulation by thyroid hormone.
1991,
Pubmed Tenenhouse,
X-linked hypophosphatemia. A phenotype in search of a cause.
1992,
Pubmed Tenenhouse,
Renal handling of phosphate in vivo and in vitro by the X-linked hypophosphatemic male mouse: evidence for a defect in the brush border membrane.
1978,
Pubmed Tenenhouse,
Renal adaptation to phosphate deprivation: lessons from the X-linked Hyp mouse.
1993,
Pubmed Tenenhouse,
Effect of phosphonoformic acid, dietary phosphate and the Hyp mutation on kinetically distinct phosphate transport processes in mouse kidney.
1989,
Pubmed Tenenhouse,
Intestinal transport of phosphate anion is not impaired in the Hyp (hypophosphatemic) mouse.
1981,
Pubmed Towbin,
Electrophoretic transfer of proteins from polyacrylamide gels to nitrocellulose sheets: procedure and some applications.
1979,
Pubmed Werner,
Expression of renal transport systems for inorganic phosphate and sulfate in Xenopus laevis oocytes.
1990,
Pubmed
,
Xenbase Werner,
Cloning and expression of cDNA for a Na/Pi cotransport system of kidney cortex.
1991,
Pubmed
,
Xenbase