Renal phosphate handling in human - what can we learn from hereditary hypophosphataemias?

被引:23
作者
Amatschek, Stefan [2 ]
Haller, Maria [2 ]
Oberbauer, Rainer [1 ,2 ]
机构
[1] Med Univ Vienna, Dept Nephrol, A-1090 Vienna, Austria
[2] KH Elisabethinen, Dept Nephrol, Linz, Austria
关键词
FGF23; hypophosphataemia; kidney; klotho; renal phosphate reabsorption; FIBROBLAST GROWTH FACTOR-23; P-I COTRANSPORTER; X-LINKED HYPOPHOSPHATEMIA; TUMOR-INDUCED OSTEOMALACIA; PARATHYROID-HORMONE; DIETARY PHOSPHATE; PROXIMAL TUBULES; NA/PI-COTRANSPORTER; MISSENSE MUTATION; APICAL MEMBRANE;
D O I
10.1111/j.1365-2362.2010.02286.x
中图分类号
R5 [内科学];
学科分类号
1002 ; 100201 ;
摘要
P>Background Renal reabsorption of inorganic phosphate is critical for the maintenance of phosphate homeostasis. The sodium dependent phosphate cotransporters NaPi-IIa and NaPi-IIc have been identified to fulfill this task at the brush border membrane of proximal tubule cells. Various factors including dietary phosphate intake, parathyroid hormone, or the so called phosphatonins such as FGF23 have been shown to regulate activity of these transporters. Design This review seeks to give an update on our current knowledge about regulatory mechanisms involved in human renal phosphate reabsorption. Results Recently, an increasing number of genes have been identified that are directly associated with inherited phosphate wasting disorders (Klotho, PHEX, DMP1 and NHERF1). Several of these genes are predominantly expressed by osteocytes and osteoclasts in the bone suggesting indispensable signalling pathways between kidneys and the skeleton. Conclusion In this review, the affected gene products in these inherited hypophosphataemias and their contribution to phosphate homeostasis are discussed.
引用
收藏
页码:552 / 560
页数:9
相关论文
共 75 条
[51]   Targeted disruption of the mouse NHERF-1 gene promotes internalization of proximal tubule sodium-phosphate cotransporter type IIa and renal phosphate wasting [J].
Shenolikar, S ;
Voltz, JW ;
Minkoff, CM ;
Wade, JB ;
Weinman, EJ .
PROCEEDINGS OF THE NATIONAL ACADEMY OF SCIENCES OF THE UNITED STATES OF AMERICA, 2002, 99 (17) :11470-11475
[52]   FGF-23 transgenic mice demonstrate hypophosphatemic rickets with reduced expression of sodium phosphate cotransporter type IIa [J].
Shimada, T ;
Urakawa, I ;
Yamazaki, Y ;
Hasegawa, H ;
Hino, R ;
Yoneya, T ;
Takeuchi, Y ;
Fujita, T ;
Fukumoto, S ;
Yamashita, T .
BIOCHEMICAL AND BIOPHYSICAL RESEARCH COMMUNICATIONS, 2004, 314 (02) :409-414
[53]   Cloning and characterization of FGF23 as a causative factor of tumor-induced osteomalacia [J].
Shimada, T ;
Mizutani, S ;
Muto, T ;
Yoneya, T ;
Hino, R ;
Takeda, S ;
Takeuchi, Y ;
Fujita, T ;
Fukumoto, S ;
Yamashita, T .
PROCEEDINGS OF THE NATIONAL ACADEMY OF SCIENCES OF THE UNITED STATES OF AMERICA, 2001, 98 (11) :6500-6505
[54]   Mutant FGF-23 responsible for autosomal dominant hypophosphatemic, rickets is resistant to proteolytic cleavage and causes hypophosphatemia in vivo [J].
Shimada, T ;
Muto, T ;
Urakawa, I ;
Yoneya, T ;
Yamazaki, Y ;
Okawa, K ;
Takeuchi, Y ;
Fujita, T ;
Fukumoto, S ;
Yamashita, T .
ENDOCRINOLOGY, 2002, 143 (08) :3179-3182
[55]   FGF-23 is a potent regulator of vitamin D metabolism and phosphate homeostasis [J].
Shimada, T ;
Hasegawa, H ;
Yamazaki, Y ;
Muto, T ;
Hino, R ;
Takeuchi, Y ;
Fujita, T ;
Nakahara, K ;
Fukumoto, S ;
Yamashita, T .
JOURNAL OF BONE AND MINERAL RESEARCH, 2004, 19 (03) :429-435
[56]   Homozygous ablation of fibroblast growth factor-23 results in hyperphosphatemia and impaired skeletogenesis, and reverses hypophosphatemia in Phex-deficient mice [J].
Sitara, D ;
Razzaque, MS ;
Hesse, M ;
Yoganathan, S ;
Taguchi, T ;
Erben, RG ;
Jüppner, H ;
Lanske, B .
MATRIX BIOLOGY, 2004, 23 (07) :421-432
[57]   PHEX, FGF23, DMP1 and beyond [J].
Strom, Tim M. ;
Juppner, Harald .
CURRENT OPINION IN NEPHROLOGY AND HYPERTENSION, 2008, 17 (04) :357-362
[58]   Hypophosphatemic Rickets with Hypercalciuria due to Mutation in SLC34A3/Type IIc Sodium-Phosphate Cotransporter: Presentation as Hypercalciuria and Nephrolithiasis [J].
Tencza, Amanda L. ;
Ichikawa, Shoji ;
Dang, Anna ;
Kenagy, David ;
McCarthy, Edward ;
Econs, Michael J. ;
Levine, Michael A. .
JOURNAL OF CLINICAL ENDOCRINOLOGY & METABOLISM, 2009, 94 (11) :4433-4438
[59]   Differential expression, abundance, and regulation of Na+-phosphate cotransporter genes in murine kidney [J].
Tenenhouse, HS ;
Roy, S ;
Martel, J ;
Gauthier, C .
AMERICAN JOURNAL OF PHYSIOLOGY-RENAL PHYSIOLOGY, 1998, 275 (04) :F527-F534
[60]   X-linked hypophosphataemia: a homologous disorder in humans and mice [J].
Tenenhouse, HS .
NEPHROLOGY DIALYSIS TRANSPLANTATION, 1999, 14 (02) :333-341