Literature DB >> 28448530

Response of Npt2a knockout mice to dietary calcium and phosphorus.

Yuwen Li1,2, Daniel Caballero3, Julian Ponsetto3, Alyssa Chen3, Chuanlong Zhu4,5, Jun Guo1, Marie Demay1, Harald Jüppner1,6, Clemens Bergwitz3.   

Abstract

Mutations in the renal sodium-dependent phosphate co-transporters NPT2a and NPT2c have been reported in patients with renal stone disease and nephrocalcinosis, but the relative contribution of genotype, dietary calcium and phosphate to the formation of renal mineral deposits is unclear. We previously reported that renal calcium phosphate deposits persist and/or reappear in older Npt2a-/- mice supplemented with phosphate despite resolution of hypercalciuria while no deposits are seen in wild-type (WT) mice on the same diet. Addition of calcium to their diets further increased calcium phosphate deposits in Npt2a-/-, but not WT mice. The response of PTH to dietary phosphate of Npt2a-/- was blunted when compared to WT mice and the response of the urinary calcium x phosphorus product to the addition of calcium and phosphate to the diet of Npt2a-/- was increased. These finding suggests that Npt2a-/- mice respond differently to dietary phosphate when compared to WT mice. Further evaluation in the Npt2a-/- cohort on different diets suggests that urinary calcium excretion, plasma phosphate and FGF23 levels appear to be positively correlated to renal mineral deposit formation while urine phosphate levels and the urine anion gap, an indirect measure of ammonia excretion, appear to be inversely correlated. Our observations in Npt2a-/- mice, if confirmed in humans, may be relevant for the optimization of existing and the development of novel therapies to prevent nephrolithiasis and nephrocalcinosis in human carriers of NPT2a and NPT2c mutations.

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Year:  2017        PMID: 28448530      PMCID: PMC5407772          DOI: 10.1371/journal.pone.0176232

Source DB:  PubMed          Journal:  PLoS One        ISSN: 1932-6203            Impact factor:   3.240


Introduction

Mutations in the sodium phosphate co-transporters, NPT2a [ and NPT2c [4, 5] cause hypophosphatemic rickets with hypercalciuria (HHRH) and idiopathic hypercalciuria (IH). Affected individuals show renal phosphate-wasting, high circulating levels of 1,25(OH)2D and absorptive hypercalciuria. As a result they develop intraluminal stones (nephrolithiasis) and mineral deposits in the renal parenchyma (nephrocalcinosis) [4-7]. Furthermore, NPT2a has also been associated with nephrolithiasis [8] and altered renal function [9-11] in genome-wide association studies. Although little is known about the prevalence in stone patients, one compound heterozygous NPT2a mutations and one compound heterozygous carrier of NPT2c mutations was identified in a small cohort comprised of 272 genetically unresolved individuals (106 children and 166 adults) from 268 families with nephrolithiasis (n = 256) or isolated nephrocalcinosis (n = 16) [12]. Oral phosphate supplements are currently thought to reduce the risk for renal mineralization in carriers of NPT2a and NPT2c mutations by lowering circulating levels of 1,25(OH)2D and absorptive hypercalciuria. However, there is concern that, despite a reduction in urine calcium excretion, this therapy could contribute to the formation of renal calcium phosphate deposits under certain conditions. This concern is based on several observations: i) renal calcium-phosphate deposits are found in the nephrocalcinosis that can develop in patients with X-linked hypophosphatemia (XLH) treated with oral phosphate supplements given multiple times throughout the day [13, 14] and in otherwise healthy individuals following treatment with phosphate enema [15] despite the absence of hypercalciuria; ii) in a recent survey of 27 kindreds with hereditary hypophosphatemic rickets with hypercalciuria (HHRH) we reported that a 10% decrease in tubular reabsorption of phosphate (TRP) predicts a two-fold increase in renal mineralization, independent of NPT2c mutation carrier status [16]; iii) dietary phosphate may increase the saturation product of calcium and phosphate by increasing urinary phosphate, which appears to be an important predictor of renal mineralization [17, 18]; iv) alterations in the levels of extracellular matrix factors affecting binding of phosphate to hydroxyapatite crystals such as osteopontin (Opn) or genes involved in the synthesis of pyrophosphate (PPi) and phosphate in the interstitial matrix such as Extracellular nucleotide pyrophosphatase phosphodiesterase 1 (Enpp1) are associated with renal mineralization [19, 20]. v) We recently reported that Npt2a mice show reduced urine osteopontin excretion when compared to WT mice and Npt2a;Opn mice show an increased size of mineral deposits in their kidneys [21]. In the present study we compared the degree of renal mineralization of WT and Npt2a mice on diets with varying calcium and phosphate contents with the serum and urine biochemistries in response to these diets. Our findings suggest that Npt2a mice respond differently to dietary phosphate when compared to WT mice and that within the Npt2a cohort the degree of renal mineralization positively correlates with plasma phosphate and FGF23, and urinary calcium excretion, while it inversely correlates with urine phosphate and anion gap as a measure of proximal tubular bicarbonate and distal tubular ammonia excretion. Our observations in Npt2a mice, if confirmed in humans, may be relevant for the optimization of existing and the development of novel therapies to prevent nephrolithiasis and nephrocalcinosis in carriers of NPT2a and NPT2c mutations.

Materials and methods

Animals

Mice were euthanized in deep anesthesia with isoflurane by removal of vital organs. The research under IACUC protocol 2014–11635 was first approved Oct. 22 2014 by the Yale Institutional Animal Care and Use Committee (IACUC), renewed Sept. 7 2016, valid through Sept. 30 2017. Yale University has an approved Animal Welfare Assurance (#A3230-01) on file with the NIH Office of Laboratory Animal Welfare. The Assurance was approved May 5, 2015. Male and female C57BL/6 mice were obtained from Charles River Laboratory, MA. Male and female Npt2a mice (B6.129S2-Slc34a1/J, Stock No: 004802), were purchased from The Jackson Laboratory (Bangor, ME). Npt2c mice were kindly provided by Dr. Hiroko Segawa, Dept. of Molecular Nutrition Institution of Health Bioscience, The Univ. of Tokushima Graduate School, Tokushima, Japan [22]. Mice were genotyped by PCR amplification of genomic DNA extracted from tail clippings and amplified by polymerase chain reaction (PCR) as described [22-25]. Mice were weaned at 3 weeks of age and allowed free access to water and normal chow (1.0% calcium, 0.7% phosphate, of which 0.3% is readily available for absorption, Harlan Teklad TD.2018S). At 8 weeks of age they were randomized to special diets using egg whites as protein source for 10 to 30 weeks: Normal phosphate, high calcium high vitamin D (TD.110762) contained 0.3% Pi, 2% Ca and 4.5 IU cholecalciferol (vitamin D3), phosphate deficient, high calcium, high vitamin D3 (TD.110761) contained 0.02% Pi, 2% Ca, 4.5 IU vitamin D3, HPC (high phosphate and high calcium) diet (TD.96348) contained 20% Lactose, 2.0% Ca, 1.25% Pi; HP (high phosphate) diet (TD.85349) contained 0.6% Ca, 1.2% Pi and CO (control diet) diet (TD.09803) contained 0.6%Ca, 0.3% Pi (S1 Fig). In all diets caloric content was 3.7 kcal/g, vitamin D3 content was 2 IU/g, the magnesium content was 0.2%. Npt2a mice can be maintained as homozygous line since they are viable and fertile. These mice were outbred against C57Bl6 wild-type mice and heterozygous mice were mated to obtain Npt2a and WT littermates to serve as controls with similar genetic background in our study. Since no differences were observed between genders data from males and females were pooled for the current study.

Blood and urine parameters

Biochemical analyses were done on blood samples collected after cardiac puncture or orbital exsanguination following an overnight fast in deep anesthesia with isoflurane, immediately before animals were euthanized by removal of vital organs. Concentrations of serum and urinary total calcium (Ca), serum and urine inorganic phosphorus (S-P), urine sodium (U-Na), potassium (U-K), chloride (U-Cl) and blood urea nitrogen (S-BUN) were determined using Stanbio Laboratories (Boerne, Texas) kits #0155, #0830, #0140, #0160, #0210 and #0580, respectively. The concentration of urine creatinine (U-crea) and of serum 1,25-dihydroxyvitamin D (1,25(OH)2D) were determined using R&D systems (Minneapolis, MN) kit #KGE005 and #AC-62F1, respectively. Urine oxalate (U-oxalate) was determined using ABCAM kit #196990. Urine citrate was measured with the Roche Citric Acid UV-Method # 10139076035. Concentrations of plasma intact parathyroid hormone (PTH) and c-terminal fibroblast growth factor 23 (FGF23) were determined using Immutopics (San Clemente, CA) kit #60–2305 and #60–6300, respectively. c-terminal FGF23 ELISAs measure total FGF23 that includes intact FGF23 and its fragments. Unless altered processing of FGF23 is suspected total FGF23 ELISAs correlate well with the intact FGF23 ELISAs [26]. Internal standards were used to assure reproducibility between batches. The urine anion gap was calculated using the formula urine Na (mmol/l) + urine K (mmol/l)–urine Cl (mmol/l). SI correction factors are for Ca (mg/dl)*0.25 = Ca (mmol/L), P (mg/dl)*0.32 = P (mmol/L), creatinine (mg/dl)*88.4 = creatinine (umol/L). Fractional excretion indexes were calculated using the formula PEI = urine Pi/(urine creatinine*plasma Pi) or CEI = urine Ca/(urine creatinine*serum Ca), respectively.

Inulin clearance

Inulin clearance was determined using serial tail bleedings following tail-vein injection of FITC-inulin as previously described [27]. Briefly, FITC-inulin (Sigma, St. Louis, MO) was dialyzed (molecular weight cutoff = 1,000) against 150 mM NaCl. 7.48μl/g body weight was injected via the tail vein. Tail vein blood was then collected at 5, 10, 20, 30, 40, 50, 60, 75, 90 and 120 min post injection of FITC-inulin and the plasma was assessed for FITC fluorescence (λ excitation = 485 nm; λ emission = 535 nm) using a Victor3 plate reader (PerkinElmer, Waltham, MA). Mice tolerated serial tail bleeds well permitting us to measure the same mice after 10, 20 and 30 weeks on HPC diet. GFR was calculated by fitting the data to a biexponential decay function and using the equation GFR = I/(A/α)+B/β), where I is the amount of FITC-inulin delivered by the bolus injection, A and B are the y-intercepts of the two decay components, and α and β are the corresponding decay constants for the distribution and elimination phases, respectively [28].

Kidney histology

Left kidneys were fixed in 4% formalin/PBS at 4°C for 12 h and then dehydrated with increasing concentration of ethanol and xylene, followed by paraffin embedding. Mineral deposits were determined on 10 um von Kossa stained sections counterstained with 1% methyl green. Hematoxyline/eosin was used as counterstain for morphological evaluation. Histomorphometric evaluation was performed using an Osteomeasure System (Osteometrics, Atlanta, GA). % calcified area was determined using the formula: calc. area = 100*calcified area/total area, and mineralization size was determined using the formula: calc. size = calcified area/number of mineralization. For transmission electron microscopy a 1 mm3 block of the left kidney was fixed in 2.5% Glutaraldehyde and 2% paraformaldehyde in phosphate buffered saline for 2 hrs., followed by post-fixation in 1% osmium liquid for 2 hours. Dehydration was carried out using a series of ethanol concentrations (50% to 100%). Renal tissue was embedded in epoxy resin, and polymerization was carried out at 60°C for overnight. After preparing a thin section (50 nm), the tissues were double stained with uranium and lead and observed using a Tecnai Biotwin (LaB6, 80 kV) (FEI, Thermo Fisher, Hillsboro, OR) at the Yale Center for Cellular and Molecular Imaging (YCCMI).

Statistical analysis

Data are expressed as means±SEM and were analyzed in Prism 7.0 (GraphPad Software, Inc., La Jolla, CA) and JMP Pro 11 (SAS, Cary, NC). Differences between groups were considered significant, if p-values obtained with linear regression analysis, or with two-way ANOVA were smaller than 0.05. Tukey’s test for multiple comparisons was used where indicated.

Results

Npt2a mice form renal mineral deposits on HP diet

Humans with loss-of-function of NPT2a [ and NPT2c [4, 5] develop renal mineralization, which may manifest during early childhood prior to specific therapy or when inappropriately receiving active vitamin D analogs, but can also occur later in life [6]. To model these kidney abnormalities, we initially tested Npt2a and Npt2c mice [22, 24]. Diets with standard calcium and phosphate content (Ca 1.0%, Pi 0.6%) were not reported to induce renal mineralization beyond weaning age in Npt2a mice [29] and no mineralization was reported in Npt2c mice up to 12 weeks of age [22]. We therefore first tested the effect of a phosphate deficient (Pi 0.02%), high calcium (Ca 2.0%) and high vitamin D3 (4.5 IU/g) diet intended to maximize hypercalciuria in both mouse models as reported for human individuals with HHRH [6] and mice [30]. However, no renal mineralization was observed at birth, at weaning and up to 12 weeks of life in either mouse strain. Conversely, renal mineralization was seen in Npt2a mice when the phosphate content of these diets was raised to 0.3% in CO diet (Fig 1D), while still no such changes were observed in Npt2c mice (not shown). Renal mineralization was present in both intraluminal and interstitial compartments (Fig 1G and 1H), and in addition to staining with the phosphate dye, von Kossa deposits were also positive with the calcium dye alizarin red (not shown). Furthermore, transmission electron images showed concentric calcium phosphate spheres similar to those described by others [29, 31] (Fig 1I and 1J).
Fig 1

Cortical and medulary renal mineralization.

Light micrographs of 10 um renal sections, prepared from paraffin-embedded kidneys, of mice were fed different diets. WT (a-c), Npt2a (d-f), von Kossa&methylene green, 4X; Npt2a on CO diet, renal cortex (g) and medulla (h), von Kossa&hematoxin&eosin, 40X. Transmission electron micrographs showing microspheres in Npt2a on CO diet (i), inset with larger magnification shown in (j).

Cortical and medulary renal mineralization.

Light micrographs of 10 um renal sections, prepared from paraffin-embedded kidneys, of mice were fed different diets. WT (a-c), Npt2a (d-f), von Kossa&methylene green, 4X; Npt2a on CO diet, renal cortex (g) and medulla (h), von Kossa&hematoxin&eosin, 40X. Transmission electron micrographs showing microspheres in Npt2a on CO diet (i), inset with larger magnification shown in (j). Taken together, these findings suggest that dietary phosphate supports the formation of renal mineral deposits, at least under certain conditions, which is contrary to the current belief that oral phosphate supplementation reduces risk for renal calcification in phosphate wasting disorders by normalizing urine calcium excretion. To further evaluate the dietary conditions influencing the development of renal mineralization, we placed 2-month-old Npt2a and wild-type (WT) littermates on three diets containing differing amounts of calcium and phosphate for 10 weeks, while the nutritional vitamin D and magnesium content were kept unchanged: i) HPC diet (High phosphate and calcium diet; 20% lactate, 2% calcium, 1.25% phosphate); ii) HP diet (High phosphate diet; 0.6% calcium, 1.20% phosphate); or iii) CO diet (Control diet; 0.6% calcium, 0.3% phosphate)(S1 Fig). Lactate in the first diet was shown to increase intestinal absorption of calcium [32]. Size and body weight (BW) of mice in each diet group were indistinguishable and the animals appeared to be thriving well, suggesting that intake of these diets was comparable.

Serum and urine biochemistry of Npt2a mice on diets with different calcium and phosphate contents compared to WT

Consistent with previous reports [24, 29] when compared to WT mice serum Pi, plasma PTH and FGF23 were decreased in Npt2a mice on the CO diet, while serum 1,25(OH)2D and urine calcium were increased (Fig 2, Table 1 and S1 Table), albeit only plasma PTH remained significantly decreased after Tukey’s correction for multiple comparisons. HP diet increased phosphaturia in Npt2a mice and HPC diet increased calciuria in WT and Npt2a mice. The urine calcium phosphorus product was increased in Npt2a mice on all three diets but not in WT mice, albeit significantly only on HPC diet. Lack of increase of the excretion of phosphate on HPC diet when compared to HP diet may be due to decreased intestinal phosphate absorption as CaHPO4 salt and suppression of PTH by this diet’s calcium content.
Fig 2

Biochemical parameters.

Serum phosphorus (S-P), serum calcium (S-Ca), serum 1,25(OH)2-vitamin D (1,25-D), plasma intact PTH (PTH), plasma c-terminal FGF23 (cFGF23), serum blood urea nitrogen (S-BUN), phosphate excretion index (U-Pi/(S-Pi*u-creatinine)(PEI), calcium excretion index (U-Ca/(S-Ca*U-creatinine) (CEI), citrate (U-citrate), oxalate (U-oxalate) and anion gap (U-AG). 8 weeks old mice were placed for 10 weeks on special egg-white based diets: HPC diet (High phosphate and calcium diet; 20% lactate, 2% calcium, 1.25% phosphate); HP diet (High phosphate diet; 0.6% calcium, 1.20% phosphate); CO diet (Control diet; 0.6% calcium, 0.3% phosphate); WT: wild type; Npt2a: Npt2a mice. The data represent mean±SEM; p-values were obtained by ANOVA and Tukey’s test to correct for multiple comparison, selected comparisons shown here, see complete list of p-values in S1 Table.

Table 1

Two-way ANOVA analysis.

Dietgenotype
S-Ca0.510.04
S-P0.030.01
S-BUN<0.00010.01
PTH0.05<0.0001
cFGF230.570.28
1,25-D0.200.10
U-Ca/U-crea<0.00010.0003
CEI<0.00010.04
U-P/U-crea<0.00010.46
PEI<0.00010.01
U-P*U-Ca/U-crea0.0002<0.0001
U-Citrate/U-crea0.820.04
U-oxalate/U-crea0.120.76
U-AG0.0040.19

The two genotypes and three diet groups from Fig 2 were subjected to a two-way ANOVA, illustrating that Npt2a-/- mice respond differently to their diets. The number of animals included for each diet is shown in S1 Table.

Biochemical parameters.

Serum phosphorus (S-P), serum calcium (S-Ca), serum 1,25(OH)2-vitamin D (1,25-D), plasma intact PTH (PTH), plasma c-terminal FGF23 (cFGF23), serum blood urea nitrogen (S-BUN), phosphate excretion index (U-Pi/(S-Pi*u-creatinine)(PEI), calcium excretion index (U-Ca/(S-Ca*U-creatinine) (CEI), citrate (U-citrate), oxalate (U-oxalate) and anion gap (U-AG). 8 weeks old mice were placed for 10 weeks on special egg-white based diets: HPC diet (High phosphate and calcium diet; 20% lactate, 2% calcium, 1.25% phosphate); HP diet (High phosphate diet; 0.6% calcium, 1.20% phosphate); CO diet (Control diet; 0.6% calcium, 0.3% phosphate); WT: wild type; Npt2a: Npt2a mice. The data represent mean±SEM; p-values were obtained by ANOVA and Tukey’s test to correct for multiple comparison, selected comparisons shown here, see complete list of p-values in S1 Table. The two genotypes and three diet groups from Fig 2 were subjected to a two-way ANOVA, illustrating that Npt2a-/- mice respond differently to their diets. The number of animals included for each diet is shown in S1 Table. Serum BUN levels were in the normal range for all groups, but lower in mutant mice on CO diet and in WT mice on HPC diet. Inulin-clearances measured in the same Npt2a mice on HPC diet for 10, 20 and 30 weeks were unaffected (Fig 3A) despite progressive renal mineralization (Fig 3B).
Fig 3

Inulin-clearance is stable in Npt2a mice on HPC diet for 10, 20 and 30 weeks despite increased renal mineralization.

(A) Inulin-clearance is stable in Npt2a mice placed at 8 weeks of age on HPC diet for 10, 20, and 30 weeks, and 175±8, 180±9, and 165±6 ml/min., respectively (mean±SEM) (B) Renal mineralization continues to increase on HPC diet over time from 10 weeks (HPC10) to 30 weeks (HPC30). The data represent individual animals (closed circles) with the means±SEM, p-values shown above the lines of comparisons were calculated by Student’s t-test.

Inulin-clearance is stable in Npt2a mice on HPC diet for 10, 20 and 30 weeks despite increased renal mineralization.

(A) Inulin-clearance is stable in Npt2a mice placed at 8 weeks of age on HPC diet for 10, 20, and 30 weeks, and 175±8, 180±9, and 165±6 ml/min., respectively (mean±SEM) (B) Renal mineralization continues to increase on HPC diet over time from 10 weeks (HPC10) to 30 weeks (HPC30). The data represent individual animals (closed circles) with the means±SEM, p-values shown above the lines of comparisons were calculated by Student’s t-test. Since urine pH affects renal mineralization, we also determined urine anion gap, which indirectly measures urinary ammonia excretion [33-35]. However, no difference between genotypes and diets was observed. Likewise, no differences were seen for urine excretion oxalate and citrate. Two-way ANOVA analysis (Table 1) showed a significant effect of diet for S-P, S-BUN, PTH, U-Ca/U-crea, CEI, U-P/U-crea, PEI, U-P*U-Ca/U-crea and U-AG, while there was a significant effect of genotype on S-Ca, S-P, S-BUN, PTH, U-Ca/U-crea, CEI, PEI, U-P*U-Ca/U-crea, and U-Citrate/U-crea. Collectively, these finding suggests that Npt2a mice respond differently to dietary phosphate when compared to WT mice.

Addition of calcium to their diet further increased calcium phosphate deposits in Npt2a, but not in WT mice

Following 10 weeks on the respective diets the animals were sacrificed, kidneys of Npt2a mice fed HPC diet (n = 12) showed 0.58±0.08% calcified area, while Npt2a mice fed CO diet (n = 21) showed 0.27±0.18% calcified area (p<0.0001 vs. HPC diet) (Fig 4). Mineralized area was reduced in Npt2a mice fed a HP diet (0.23±0.08% calcified area, n = 23) when compared to HPC diet, but was similar when compared to Npt2a mice fed CO diet. No mineralization was observed in WT mice on HPC or HP diet, but mineralization was seen in two of ten WT mice on CO diet, albeit less than in Npt2a mice on the same diet. Mineralization size was similar on all three diets (calculation see methods, data not shown).
Fig 4

Renal mineralization is increased in Npt2a mice on high phosphate/high calcium diet.

Histomorphometric analysis of renal mineralization (%calcified area = 100*mineralization area/tissue area) in 10 um sections of kidneys from mice feed different diets for 10 weeks (see S1 Fig for layout and legend of Table 2 for composition of diets). The data represent individual animals (closed circles) and the mean±SEM; p-values were obtained by ANOVA and Tukey’s test to correct for multiple comparison.

Renal mineralization is increased in Npt2a mice on high phosphate/high calcium diet.

Histomorphometric analysis of renal mineralization (%calcified area = 100*mineralization area/tissue area) in 10 um sections of kidneys from mice feed different diets for 10 weeks (see S1 Fig for layout and legend of Table 2 for composition of diets). The data represent individual animals (closed circles) and the mean±SEM; p-values were obtained by ANOVA and Tukey’s test to correct for multiple comparison.
Table 2

Linear regression analysis.

Univariate analysisMultivariate analysis
ParameterCCp-valuesnSexS-PcFGF23U-Ca/U-creaCEIU-P/U-creaPEIU-AGMultiple
S-Ca0.120.460<0.00011.00.60.00010.00090.030.020.50.3
S-P0.390.004550.0060.0040.0090.10.10.010.10.011.0
S-BUN0.070.6590.30.030.70.10.10.680.20.21.0
PTH0.050.7480.00030.30.30.030.11.00.80.40.4
cFGF230.360.01490.010.0040.010.0090.0030.030.030.20.2
1,25-D-0.011.0460.70.90.70.70.80.50.50.20.7
U-Ca/U-crea0.49<0.000159<0.00010.0040.001<0.00010.0090.00080.0020.0020.8
CEI0.390.003570.00020.030.010.40.0020.010.030.0080.4
U-P/U-crea-0.270.04590.040.040.10.40.230.040.810.60.4
PEI-0.370.008530.010.20.0030.10.080.20.0080.30.4
U-P*U-Ca/U-crea0.230.09570.20.70.20.10.70.020.090.010.02
U-Citrate/U-crea0.150.4320.40.50.50.20.20.30.30.940.6
U-oxalate/U-crea0.200.3330.40.340.60.20.070.090.10.30.1
U-AG-0.420.01350.020.0080.10.060.040.030.0080.010.001

Following univariate linear regression analysis of all experimental Npt2a mice analysis of covariance (multivariate analysis) was used to control for influence of gender, variables separately as indicated in the column header or to control for multiple variables (S-P, cFGF23, U-Ca/U-crea, CEI, U-P/U-crea, PEI, U-AG). The number of animals included for each diet is shown in S1 Table.

Degree of renal mineralization of Npt2a mice directly correlates with blood phosphate and FGF23 levels and urine calcium excretion

A combined univariate linear regression analysis of all Npt2a mice showed a significant direct correlation of the urine calcium/urine creatinine ratio (U-Ca/U-cre, CI = 0.49, p = 8.14E-05, n = 59) (Table 2, S1G Fig) and of the calcium excretion index (CEI, CI = 0.39, p = 0.00259, n = 57) (Table 2, S2H Fig) with % calcified area. This analysis also showed a positive correlation of serum phosphate (S-P, CI = 0.39, p = 0.00402, n = 55) (Table 2, S2B Fig) and plasma FGF23 with % calcified area (cFGF23, CI = 0.36, p = 0.01036, n = 49) (Table 2, S2E Fig). Following univariate linear regression analysis of all experimental Npt2a mice analysis of covariance (multivariate analysis) was used to control for influence of gender, variables separately as indicated in the column header or to control for multiple variables (S-P, cFGF23, U-Ca/U-crea, CEI, U-P/U-crea, PEI, U-AG). The number of animals included for each diet is shown in S1 Table.

Degree of renal mineralization of Npt2a mice inversely correlates with urine phosphate excretion and urine anion gap

Univariate linear regression analysis furthermore indicated a significant inverse correlation of the urine phosphate/urine creatinine ratio (U-P/U-cre, CI = -0.27, p = 0.03855, n = 59) (Table 2, S3A Fig) and of the phosphate excretion index (PEI, CI = -0.37, p = 0.0084, n = 53) (Table 2, S3B Fig) with % calcified area. Urine anion gap was inversely related to the degree of renal mineral deposits (U-AG, CI = -0.42, p = 0.01271, n = 35) (Table 2, S3F Fig). No significant association was seen for PTH in Table 2 and S2D Fig although comparison of the means in Fig 2D and S1 Table suggests an inverse relationship between PTH levels and mineralization. Likewise, no significant association was observed for urine citrate/urine creatinine, urine oxalate/urine creatinine or serum 1,25(OH)2D. Similar trends were seen when evaluating diet groups separately (not shown).

Multivariate linear regression analysis suggests that plasma phosphate, serum FGF23, urine calcium, urine phosphate and anion gap are independent predictors of renal mineral deposits

The observed associations continued to be significant after controlling for gender, or the respective variables independently (Table 2). Urine anion gap remained significant even when controlling for all significant variables simultaneously. A stepwise multivariate linear regression analysis furthermore showed that plasma phosphate was able to explain 58% of the variance in renal mineralization, and both plasma phosphate and CEI combined were able to explain 69% of the variance.

Discussion

Oral phosphate supplements are currently thought to reduce risk for renal mineralization in human carriers of NPT2a and NPT2c mutations. However, as mentioned in the introduction, there is concern that this therapy might contribute to the formation of renal mineralization despite reduced 1,25(OH)2D levels and thus reduced urinary calcium excretion under certain conditions. Our observation that no mineralization was observed in Npt2a and Npt2c mice on phosphate deficient diet, while mineralization persisted and/or reappeared in older Npt2a mice supplemented with 0.3% phosphorus, further supports this concern. Tenenhouse et al. [30] found that renal mineralization in Npt2a mice resolves at weaning age when the dietary phosphate content was increased from 0.6% to 1%. However, these authors also noticed that mineralization re-appeared when phosphate was further raised to 1.65% despite improved hypercalciuria on this diet. Similarly, we found continued mineralization in older Npt2a mice on HP diet containing 1.2% Pi, despite low calciuria, when compared to CO diet and HPC diet (Figs 2 and 4), suggesting that dietary phosphate can be harmful under certain conditions, and that oral phosphate supplementation to treat the bone disease in hypophosphatemic rickets may need to be carefully monitored to not cause renal calcifications. Renal calcifications were similar when phosphate content was raised from 0.3 to 1.2% in HP diet and only addition of 2% calcium in HPC diet made them worse, suggesting that dietary calcium or the ratio of dietary calcium and phosphorus contributes to mineralization risk. Renal mineralization was absent in WT mice on HPC and HP diets. These observations suggest that Npt2a mice respond differently to dietary phosphate and calcium supplementation when compared to WT. To better understand the impact of dietary phosphate we considered the possibility that dietary phosphate increases the risk for renal mineralization by raising urine phosphate or the urine calcium x phosphorus product. Npt2a mice are predicted to be more susceptible to negative effects of dietary phosphate due to their reduced ability to reclaim phosphate from the urine when compared to WT mice. This hypothesis is supported by the finding that phosphaturia and calcium x phosphorus product (U-Ca*U-P/U-crea) is higher in Npt2a mice on HP diet when compared to WT (Fig 2I–2K and S1 Table). Linear regression analysis of the serum and urine biochemistries of Npt2a mice revealed a positive correlation between plasma phosphorus and % calcified area (S2B Fig) and plasma FGF23 and % calcified area (S2E Fig), further supporting the idea that dietary phosphate, by increasing plasma phosphorus and FGF23, can worsen renal calcifications. It is possible, that FGF23 directly supports renal calcifications in addition to being a marker for oral phosphate load and FGF23-neutralizing antibodies, which have successfully been used in XLH [36] may offer advantages for the risk of renal calcifications when compared to standard therapy with oral phosphate supplements. However, in light of the positive correlation of plasma phosphate and FGF23 with renal mineralization, we were surprised to find phosphaturia (U-P/U-crea and PEI) inversely related to renal mineralization (Table 2 and S3A and S3B Fig). Furthermore, renal mineralization was present in both intraluminal and interstitial compartments (Fig 1G and 1H), while loss of Npt2a by modifying reabsorption of phosphate from the urine would be predicted to cause nephrocalcinosis rather than nephrolithiasis in these mice [17, 18]. Thus additional factors may determine risk for renal mineralization in addition to increased intraluminal phosphate in Npt2a mice on HP diet, for example reduced osteopontin excretion as previously reported by us [21], or interstitial levels of phosphate. We also evaluated for changes in other stone risk factors [17, 18], but no differences were observed in urine citrate and oxalic acid excretion when comparing WT and Npt2a mice (Fig 2L and 2M, S1 Table), or when using linear regression analysis of the Npt2a cohort (Table 2, S3F and S3G Fig). However, urine anion gap, which is an indirect measure of renal ammonia excretion, was found to be inversely correlated with the degree of renal mineralization (Table 2, S3H Fig). High urine anion gap is characteristically seen with impaired urine ammonia excretion in renal tubular acidosis type 1, while low or negative urine anion gap can occur in the context of proximal tubular bicarbonate loss in renal tubular acidosis type 2 [33-35]. The latter would be consistent with reports of Fanconi-type syndrome due to loss-of-function mutations in NPT2a in human individuals [2], and suggests that urine pH could be an additional risk factor for stone formation in Npt2a mice. The observed inverse relation of urine anion gap with the degree of renal mineralization persisted when controlled for P-P, cFGF23, U-Ca/U-crea, CEI, U-P/U-crea, PEI, U-AG separately or in combination (Table 2), and likewise when Npt2a mice were analyzed for each diet separately (not shown). Taken together our findings suggest that proximal tubular function beyond phosphate transport may be impaired which could contribute to the formation of renal mineralization in Npt2a mice. A limitation of this study is that Npt2a mice exhibit a milder biochemical phenotype than that seen in most humans with loss-of-function mutations in NPT2a. Renal mineralization also resolves after weaning [29, 31] in this mouse model and composition of mineral deposits may differ between mice and humans who carry NPT2a mutations. However, our findings that renal stones and nephrocalcinosis persist and/or reappear in older Npt2a mice under certain conditions, and earlier reports and our own TEM studies show that these mineral deposits have a composition similar to Randall’s plaques ([31] and Fig 1I and 1J) argue that despite these species-related differences, important insights can be gained into the underlying pathophysiology of nephrolithiasis and nephrocalcinosis in this mouse model. Metabolic cage studies are needed to formally assure similar intake of the different diets, however similar weight gain of all three cohorts on CO, HP and HPC diets is reassuring. Direct determination of urine pH and bicarbonate excretion requires dissection of bladders from a new cohort of mice and will be subject of future studies to confirm indirect evidence obtained from urine anion gap measurements presented here. Lastly, a time course of renal mineralization is necessary to determine whether neonatal and weaning-age mineralization, which presumably formed during relatively high calcium and phosphate intake with the breast milk, did not resolve when animals are maintained on HP diet after weaning. Or whether new mineralization developed on HP diet, as suggested by our observation that renal mineralization continues to increase in mice between 10 and 30 weeks on HPC diet (Fig 3B). In summary, we show here that Npt2a mice respond differently to dietary phosphate when compared to WT mice and that the degree of renal mineralization positively correlates with serum phosphate, plasma FGF23, and urinary calcium excretion, while it inversely correlates with urine phosphate and urine anion gap. Our observations in Npt2a mice suggest presence of risk factors for renal mineralization in addition to hypercalciuria, and if confirmed in humans our findings may be relevant for the optimization of existing and for the development of novel therapies to prevent nephrolithiasis and nephrocalcinosis in human carriers of NPT2a and NPT2c mutations.

Experimental design.

At 8 weeks of age they were randomized to special diets for 10 to 30 weeks: HPC (high phosphate and high calcium diet, 20% Lactose, 2.0% Ca, 1.25% Pi; HP (high phosphate diet, 0.6% Ca, 1.2% Pi and CO (control diet, 0.6%Ca, 0.3% Pi). Mice were sacrificed at after 10 weeks or 30 weeks on these diets. (TIF) Click here for additional data file.

Urinary calcium excretion and plasma FGF23 levels are positively correlated with renal mineralization in a combined univariate linear regression analysis Npt2a-/- mice fed different diets.

All experimental Npt2a mice from S1 Table (n = 56) were evaluated using linear regression analysis to determine the association of renal mineralization with serum calcium (S-Ca, A), serum phosphorus (S-P, B), serum BUN (S-BUN, C), plasma intact PTH (PTH, D), plasma c-terminal FGF23 (cFGF23, E), serum 1,25(OH)2-vitamin D (1,25(OH)2-D, F), the ratios of urine calcium/urine creatinine (U-Ca/U-crea, G), and urine calcium excretion index (CEI, H). Data points represent values of individual animals. Results of the linear regression analysis are shown as solid line with 95% confidence interval (stippled lines), for correlation coefficients and Pearson’s p-values see Table 2. (TIFF) Click here for additional data file.

Urinary phosphate excretion and anion gap are negatively correlated with renal mineralization in a combined univariate linear regression analysis Npt2a-/- mice fed different diets.

All experimental Npt2a mice from S1 Table (n = 56) were evaluated using linear regression analysis to determine the association of renal mineralization with the ratios of urine phosphorus/urine creatinine (U-P/U-crea, A), urine phosphate excretion index (PEI, B), urine calcium*phosphorus/urine creatinine (U-Ca*U-P/U-crea, C), urine citrate/urine creatinine (U-citrate/U-crea, D), urine oxalate/urine creatinine (U-oxalate/U-crea, E), urine anion gap (U-AG, F). Data points represent values of individual animals. Results of the linear regression analysis are shown as solid line with 95% confidence interval (stippled lines), for correlation coefficients and Pearson’s p-values see Table 2. (TIFF) Click here for additional data file. Serum phosphorus (S-P), serum calcium (S-Ca), serum 1,25(OH)2-vitamin D (1,25-D), plasma intact PTH (iPTH), plasma c-terminal FGF23 (cFGF23), serum blood urea nitrogen (S-BUN), phosphate excretion index (U-Pi/(S-Pi*u-creatinine)(PEI), calcium excretion index (U-Ca/(S-Ca*U-creatinine) (CEI), citrate (U-citrate), oxalate (U-oxalate) and anion gap (U-AG). All diets are egg-white based: HPC diet (High phosphate and calcium diet; 20% lactate, 2% calcium, 1.25% phosphate); HP diet (High phosphate diet; 0.6% calcium, 1.20% phosphate); CO diet (Control diet; 0.6% calcium, 0.3% phosphate); WT, wild type; The data represent mean±SEM; p-values were obtained by ANOVA and Tukey’s test to correct for multiple comparison. (XLSX) Click here for additional data file.
  36 in total

1.  Renal failure and nephrocalcinosis associated with oral sodium phosphate bowel cleansing: clinical patterns and renal biopsy findings.

Authors:  Gulfiliz Gonlusen; Hulya Akgun; Atilla Ertan; Juan Olivero; Luan D Truong
Journal:  Arch Pathol Lab Med       Date:  2006-01       Impact factor: 5.534

2.  Randomized trial of the anti-FGF23 antibody KRN23 in X-linked hypophosphatemia.

Authors:  Thomas O Carpenter; Erik A Imel; Mary D Ruppe; Thomas J Weber; Mark A Klausner; Margaret M Wooddell; Tetsuyoshi Kawakami; Takahiro Ito; Xiaoping Zhang; Jeffrey Humphrey; Karl L Insogna; Munro Peacock
Journal:  J Clin Invest       Date:  2014-02-24       Impact factor: 14.808

3.  Renal calcification in mice homozygous for the disrupted type IIa Na/Pi cotransporter gene Npt2.

Authors:  Hien Chau; Sherif El-Maadawy; Marc D McKee; Harriet S Tenenhouse
Journal:  J Bone Miner Res       Date:  2003-04       Impact factor: 6.741

4.  Fourteen monogenic genes account for 15% of nephrolithiasis/nephrocalcinosis.

Authors:  Jan Halbritter; Michelle Baum; Ann Marie Hynes; Sarah J Rice; David T Thwaites; Zoran S Gucev; Brittany Fisher; Leslie Spaneas; Jonathan D Porath; Daniela A Braun; Ari J Wassner; Caleb P Nelson; Velibor Tasic; John A Sayer; Friedhelm Hildebrandt
Journal:  J Am Soc Nephrol       Date:  2014-10-08       Impact factor: 10.121

5.  Impaired urinary osteopontin excretion in Npt2a-/- mice.

Authors:  Daniel Caballero; Yuwen Li; Julian Ponsetto; Chuanlong Zhu; Clemens Bergwitz
Journal:  Am J Physiol Renal Physiol       Date:  2016-10-26

6.  Npt2a and Npt2c in mice play distinct and synergistic roles in inorganic phosphate metabolism and skeletal development.

Authors:  Hiroko Segawa; Akemi Onitsuka; Junya Furutani; Ichiro Kaneko; Fumito Aranami; Natsuki Matsumoto; Yuka Tomoe; Masashi Kuwahata; Mikiko Ito; Mitsuru Matsumoto; Minqi Li; Norio Amizuka; Ken-ichi Miyamoto
Journal:  Am J Physiol Renal Physiol       Date:  2009-07-01

7.  A new kindred with hereditary hypophosphatemic rickets with hypercalciuria: implications for correct diagnosis and treatment.

Authors:  M Tieder; R Arie; I Bab; J Maor; U A Liberman
Journal:  Nephron       Date:  1992       Impact factor: 2.847

8.  Mutations in SLC34A3/NPT2c are associated with kidney stones and nephrocalcinosis.

Authors:  Debayan Dasgupta; Mark J Wee; Monica Reyes; Yuwen Li; Peter J Simm; Amita Sharma; Karl-Peter Schlingmann; Marco Janner; Andrew Biggin; Joanna Lazier; Michaela Gessner; Dionisios Chrysis; Shamir Tuchman; H Jorge Baluarte; Michael A Levine; Dov Tiosano; Karl Insogna; David A Hanley; Thomas O Carpenter; Shoji Ichikawa; Bernd Hoppe; Martin Konrad; Lars Sävendahl; Craig F Munns; Hang Lee; Harald Jüppner; Clemens Bergwitz
Journal:  J Am Soc Nephrol       Date:  2014-04-03       Impact factor: 10.121

9.  Mice lacking osteopontin show normal development and bone structure but display altered osteoclast formation in vitro.

Authors:  S R Rittling; H N Matsumoto; M D McKee; A Nanci; X R An; K E Novick; A J Kowalski; M Noda; D T Denhardt
Journal:  J Bone Miner Res       Date:  1998-07       Impact factor: 6.741

Review 10.  Comprehensive clinical approach to renal tubular acidosis.

Authors:  Sonia Sharma; Ankur Gupta; Sanjiv Saxena
Journal:  Clin Exp Nephrol       Date:  2015-05-09       Impact factor: 2.801

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Review 1.  Hereditary hypophosphatemic rickets with hypercalciuria: pathophysiology, clinical presentation, diagnosis and therapy.

Authors:  Clemens Bergwitz; Ken-Ichi Miyamoto
Journal:  Pflugers Arch       Date:  2018-08-14       Impact factor: 3.657

2.  Intraperitoneal pyrophosphate treatment reduces renal calcifications in Npt2a null mice.

Authors:  Daniel Caballero; Yuwen Li; Jonathan Fetene; Julian Ponsetto; Alyssa Chen; Chuanlong Zhu; Demetrios T Braddock; Clemens Bergwitz
Journal:  PLoS One       Date:  2017-07-13       Impact factor: 3.240

Review 3.  FGF23 and its role in X-linked hypophosphatemia-related morbidity.

Authors:  Signe Sparre Beck-Nielsen; Zulf Mughal; Dieter Haffner; Ola Nilsson; Elena Levtchenko; Gema Ariceta; Carmen de Lucas Collantes; Dirk Schnabel; Ravi Jandhyala; Outi Mäkitie
Journal:  Orphanet J Rare Dis       Date:  2019-02-26       Impact factor: 4.123

4.  Endocrine regulation of MFS2 by branchless controls phosphate excretion and stone formation in Drosophila renal tubules.

Authors:  Emily Rose; Daniela Lee; Emily Xiao; Wenzhen Zhao; Mark Wee; Jonathan Cohen; Clemens Bergwitz
Journal:  Sci Rep       Date:  2019-06-19       Impact factor: 4.379

5.  Transgenic mouse model for conditional expression of influenza hemagglutinin-tagged human SLC20A1/PIT1.

Authors:  Sampada Chande; Bryan Ho; Jonathan Fetene; Clemens Bergwitz
Journal:  PLoS One       Date:  2019-10-15       Impact factor: 3.240

6.  Phosphorus bioaccessibility measured in four amino acid-based  formulas using in-vitro batch digestion translates well into phosphorus bioavailability in mice.

Authors:  Sampada Chande; Francina Dijk; Jonathan Fetene; Steven Yannicelli; Thomas O Carpenter; Ardy van Helvoort; Clemens Bergwitz
Journal:  Nutrition       Date:  2021-04-28       Impact factor: 4.893

7.  Slc20a1/Pit1 and Slc20a2/Pit2 are essential for normal skeletal myofiber function and survival.

Authors:  Sampada Chande; Daniel Caballero; Bryan B Ho; Jonathan Fetene; Juan Serna; Dominik Pesta; Ali Nasiri; Michael Jurczak; Nicholas W Chavkin; Nati Hernando; Cecilia M Giachelli; Carsten A Wagner; Caroline Zeiss; Gerald I Shulman; Clemens Bergwitz
Journal:  Sci Rep       Date:  2020-02-20       Impact factor: 4.379

  7 in total

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