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Effect of phosphonoformic acid, dietary phosphate and the Hyp mutation on kinetically distinct phosphate transport processes in mouse kidney.
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Parabiosis suggests a humoral factor is involved in X-linked hypophosphatemia in mice.
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The renal phosphate transport defect in normal mice parabiosed to X-linked hypophosphatemic mice persists after parathyroidectomy.
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Evidence for an intrinsic renal tubular defect in mice with genetic hypophosphatemic rickets.
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Electrophoretic transfer of proteins from polyacrylamide gels to nitrocellulose sheets: procedure and some applications.
Proc Natl Acad Sci U S A. 1979 Sep;76(9):4350-4
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Isolation of biologically active ribonucleic acid from sources enriched in ribonuclease.
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Number and evolutionary conservation of alpha- and beta-tubulin and cytoplasmic beta- and gamma-actin genes using specific cloned cDNA probes.
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Intestinal transport of phosphate anion is not impaired in the Hyp (hypophosphatemic) mouse.
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Expression of renal transport systems for inorganic phosphate and sulfate in Xenopus laevis oocytes.
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Sulfate inhibits [14C]phosphonoformic acid binding to renal brush-border membranes.
Am J Physiol. 1990 Aug;259(2 Pt 2):F286-92
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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.
Biochem Biophys Res Commun. 1990 Aug 16;170(3):1288-93
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Conserved loci on the X chromosome confer phosphate homeostasis in mice and humans.
Genet Res. 1990 Oct-Dec;56(2-3):141-52
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Abnormal proximal tubule apical membrane protein composition in X-linked hypophosphatemic mice.
Am J Physiol. 1991 Mar;260(3 Pt 2):F317-22
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Characterization of the defect in the Na(+)-phosphate transporter in vitamin D-resistant hypophosphatemic mice.
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Renal brush-border membrane Na(+)-sulfate cotransport: stimulation by thyroid hormone.
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Cloning and expression of cDNA for a Na/Pi cotransport system of kidney cortex.
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Crosstransplantation of kidneys in normal and Hyp mice. Evidence that the Hyp mouse phenotype is unrelated to an intrinsic renal defect.
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X-linked hypophosphatemia. A phenotype in search of a cause.
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Multilocus mapping of the X-linked hypophosphatemic rickets gene.
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Renal adaptation to phosphate deprivation: lessons from the X-linked Hyp mouse.
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Expression cloning of human and rat renal cortex Na/Pi cotransport.
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Expression cloning of rat renal Na+/SO4(2-) cotransport.
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Localization of NaPi-1, a Na-Pi cotransporter, in rabbit kidney proximal tubules. I. mRNA localization by reverse transcription/polymerase chain reaction.
Pflugers Arch. 1993 Aug;424(3-4):203-9
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Localization of NaPi-1, a Na/Pi cotransporter, in rabbit kidney proximal tubules. II. Localization by immunohistochemistry.
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Localization of a renal sodium-phosphate cotransporter gene to human chromosome 5q35.
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Parental origin of mutant allele does not explain absence of gene dose in X-linked Hyp mice.
Genet Res. 1993 Aug;62(1):39-43
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Cleavage of structural proteins during the assembly of the head of bacteriophage T4.
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Hypophosphatemia: mouse model for human familial hypophosphatemic (vitamin D-resistant) rickets.
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Micropuncture study of renal phosphorus transport in hypophosphatemic vitamin D resistant rickets mice.
Pflugers Arch. 1977 Oct 19;371(1-2):33-8
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Primary cultures of renal epithelial cells from X-linked hypophosphatemic (Hyp) mice express defects in phosphate transport and vitamin D metabolism.
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