Juvenile nephronophthisis and related variants: clinical features and molecular approach.
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Publications and source records attributed to F Perfumo.
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This study reviews nine new families with branchio-oto-renal (BOR) syndrome (Online Mendelian Inheritance in Man [OMIM] 113650). Diagnosis was made by studying 10 index cases, and then 22 other previously undetected patients were diagnosed within the nine families. The syndrome consists of conductive, sensorineural, or mixed hearing loss; preauricular pits; structural defects of the outer, middle, or inner ear; renal anomalies; lateral cervical fistulas, cysts, or sinuses; and/or nasolacrimal duct stenosis or fistulas. In our study, all patients first diagnosed in each familial group were recognized on the basis of severe renal anomalies associated with at least one of these symptoms. Our study showed that BOR syndrome is a misdiagnosed disorder, usually recognized in the presence of severe renal failure but often not diagnosed, especially in the adult in the presence of other isolated clinical signs, such as mild branchial or urological anomalies. We stress the meticulous search we performed for renal anomalies and/or hearing loss in all subjects showing minimal signs of branchial defects. BOR syndrome should be suspected in all cases of isolated urological anomalies, even if no other signs of the syndrome are present. After BOR syndrome has been diagnosed in a patient, all family members should be examined for the presence of the syndrome, even if there are only minimal stigmata of the disease.
Automated peritoneal dialysis (APD) is considered the first-choice chronic peritoneal dialysis modality for pediatric patients. Nighttime APD courses reduce the impact of PD treatment on a patient's and family's way of life, and the wide range of prescription options permit the dialysis schedule to be tailored to the needs of children of varying age and body size. We registered data concerning the dialytic regimens adopted in 12 pediatric dialysis centers for the treatment of 110 children on APD. Of the 110 children, 64 (aged 7.6 +/- 5.1 years) were on nightly intermittent peritoneal dialysis (NIPD); 29 (aged 9.2 +/- 4.3 years) were on tidal peritoneal dialysis (TPD); and 17 (aged 8.2 +/- 4.9 years) were on continuous cycling peritoneal dialysis (CCPD). The main prescription parameters for the various regimens (mean +/- standard deviation) were these: NIPD--exchanges: 13.0 +/- 5.8; duration: 10.0 +/- 1.1 hours; dwell volume: 36.5 +/- 6.2 mL/kg body weight (BW); glucose concentration: 1.69% +/- 0.41%. TPD--exchanges: 23.3 +/- 8.1; duration: 10.0 +/- 1.0 hours; dwell volume: 36.1 +/- 5.9 mL/kg BW; glucose concentration: 1.63% +/- 0.37%. CCPD--exchanges: 13.0 +/- 4.7; duration: 10.1 +/- 1.3 hours; dwell volume: 37.7 +/- 5.2 mL/kg BW; glucose concentration: 1.65% +/- 0.28%. Tidal volume was 52.2% +/- 9.0% of initial fill volume. Daytime dwell volume was 54.8% +/- 17.3% of night volume in CCPD patients, and 56.6% +/- 13.3% in 9 patients on continuous TPD. Because the patient population in this report varied in age, body size, and metabolic needs, the resulting range in prescription parameters was quite wide. Nevertheless, the duration of nightly PD sessions averaged 10 hours, fill volume averaged 36 mL per kilogram body weight, and daytime volume averaged 50% of nighttime fill volume.
Autosomal recessive nephronophthisis (NPH) is a renal disorder histologically characterized by tubulointerstitial lesions that are, in some cases, associated with extrarenal manifestations such as tapeto-retinal degeneration or liver fibrosis. The disease is usually pauci-symptomatic in an early phase but invariably evolves to end-stage renal failure in childhood or early adulthood. The recent discovery of the NPHP1 gene (nephrocystin) has prompted research into putative genotype-phenotype correlations. We screened a population of 68 Italian children (10 multiplex families, 47 sporadic cases) with a clinical and histopathologic picture of NPH and found a large homozygous deletion at 2q13 involving nephrocystin in 30 cases, and heterozygous deletion associated with new point mutations at exons 15 (Tyr518Ter) and 17 (Arg585Ter) of the gene in two other cases. The remaining 36 children had no apparent molecular defects of nephrocystin. In spite of this genetic heterogeneity, the two groups, with and without detectable molecular defects of nephrocystin, showed similar renal defects and comparable cumulative survival considering the start of dialysis as an end-point. The unique difference observed was a less frequent requirement of dialysis in NPH1 patients with pure renal form. Finally, tapeto-retinal degeneration was associated with renal lesions in seven cases presenting deletion of the nephrocystin gene and in five sporadic cases without molecular defects. These data show that a molecular defect of nephrocystin is involved in approximately 50% of patients with NPH, and another 50% require further molecular characterization. Research therefore should now be aimed at characterizing a new locus. In spite of the molecular heterogeneity, NPH in children presents similar renal and extrarenal manifestations, thus suggesting the involvement of common pathological routes.
The purpose of this study was to determine the reference, bivariate, and tolerance intervals of the whole-body impedance vector in Italian children. This was a cross-sectional, multicenter study, and participants were chosen from the general school population. The impedance vector (standard, tetrapolar analysis at 50-kHz frequency) was measured in 3110 subjects, ages 2 to 15 y, and 2044 healthy children (1014 male and 1030 female) with weight and height within the 95th percentile were selected for the analysis (resistance-reactance graph method). The age-specific 95% confidence intervals of mean vectors and the 95%, 75%, and 50% tolerance intervals for individual vector measurements were plotted using resistance and reactance components standardized by the subject's height. Mean vectors from both sexes with separate 95% confidence ellipses were considered as representative of eight different age groups, from 2 to 13 y. There was a statistically significant sex effect on vector distribution from boys and girls in the age group of 14 to 15 y. The impedance vector distribution of children was also compared with healthy adult subjects (354 male and 372 female, age 15 to 85 y). There was a progressive, statistically significant vector shortening from age 2 to 15 y toward the adults' vector position. In conclusion, we established the trajectory followed by the mean impedance vector in children over ages 2 to 15 y and also obtained the reference, bivariate, and 95%, 75%, and 50% tolerance intervals of the impedance vector by age for healthy children, with which the vectors from children with altered body composition can be tested.
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The CD59 membrane protein confers protection from C5b-9-mediated cell lysis. Because evidence exists for complement (C) activation and generation of C5b-9 in the peritoneal cavity during chronic peritoneal dialysis (CPD), we investigated, on mesothelial cell (MC) lines, the expression of CD59 and the production of C components. Four MC lines were obtained from children on CPD, and two from non uremic children. CD59 expression on MCs was investigated with anti-CD59 monoclonal antibody (mAb) and polyclonal goat immunoglobulin G (IgG). MC lines were positive for staining with anti-CD59 mAb. Western blotting analysis of MC membrane demonstrated a band with the same molecular weight as CD59. Incubation of MC with anti-CD59 mAb abrogated the protective effect of CD59 (100% cytotoxicity). C3, C4, and C6 were detected in the supernatants of MC; in non uremic MC supernatants, C5, C7, C8, and C9 were also detectable, and C4 concentration was tenfold higher. CD59 expression confers to MCs protection from C5b-9-mediated lysis. MCs produce C factors. These findings suggest that production of complement components and expression of CD59 on MCs could play a role both in peritoneal cavity infection (decreased complement production) and in peritoneal membrane damage (decreased CD59 expression and reduced remesothelialization owing to MC lysis).
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Growth failure remains a major complication of chronic renal insufficiency in children, which greatly affects their quality of life. Based upon the data published in the literature it appears that growth hormone therapy improves growth in these children, with little secondary effects. However, some uncertainties persist concerning the safety and efficacy of this therapy, so that careful evaluations must continue.
We report on a 17 6/12-year-old boy with nephronophthisis, retinitis pigmentosa, left upper eyelid ptosis, enopthalmos, transmissive deafness, GH and TSH deficiency, and mild skeletal dysplasia. A similar case was reported by Bianchi et al. [1988: Helv Paediatr Acta 43:449-455] in another Italian patient. Here we confirm the previous observations and argue that both patients might be affected by a new syndrome.
Chronic peritoneal dialysis (CPD), widely used in uremic children, may have contrasting effects on the nutritional status of patients. Metabolic and nutritional abnormalities due to the combined effects of uremia per se, glucose absorption from the dialysate and catabolic factors, such as protein and amino acid losses into dialysate, poor appetite, and recurrent episodes of peritonitis are the most important. Although CPD allows for fewer dietary restrictions and supplies an extra amount of calories by glucose absorbed with the peritoneal fluid, when protein and energy intakes are assessed the protein intake was almost sufficient or more than that prescribed, whereas the energy intake was low. In CPD children the standard deviation score for weight, height, triceps skinfold thickness, and midarm circumference has been reported as more severely impaired in children less than ten years old. Anthropometric parameters did not worsen during CPD treatment. Plasma proteins and albumin are reported as being low in CPD children. The dietary intake and protein losses have been considered to be the most important determinants of the albumin level in CPD patients. The reported average dialysate losses of free amino acids (AA) during CPD in children vary from 0.02 to 0.03 g/kg/day in different studies. The patterns of plasma AA in CPD is represented by reduced levels of branched chain AA and of other essential amino acids and increased concentrations of some nonessential AA. Several factors may influence plasma AA profile: uremia per se, hormonal alterations, protein and AA losses, and dietary intake. A more specific uremic AA pattern is found in muscle, the largest pool of free AA in the body. Studies on muscle AA in adults on CPD are conflicting: some authors have reported several muscle AA alterations, but others have shown an almost normal pattern. Low valine and leucine muscle levels have been reported in children on CPD.
Our objective was to evaluate the infectious complications of the post-transplant period attributable to the persistence of catheter and other complications when chronic peritoneal dialysis (CPD) was performed post-transplantation. The design was a retrospective study, and the setting was an Italian registry of pediatric chronic peritoneal dialysis. There were 86 pediatric renal transplants (9/86 from living related donors, 2/86 simultaneous liver and kidney transplantation for oxalosis). Six of 86 transplants were lost at follow-up. Mean age of the children (n = 80) at transplantation was 9.3 years (range: 1.7-21 years). They had been on CPD for a mean period of 1.7 years (range: 0.2-4.6 years). During CPD, 67 peritonitis episodes (80% related to exit-site and/or tunnel infections) were observed, with an incidence of peritonitis of one episode per 16 months CPD. The mean safe interval of peritonitis and/or exit-site or tunnel infection was 208 days (range: 36-1897 days). The mean time of catheter removal was 80.3 days (range: 0-216 days) post-transplantation. During the first month post-transplantation, one episode of peritonitis secondary to a sepsis occurred in one child. No other episodes of peritonitis or exit-site and/or tunnel infections were observed. Two of 80 children returned to CPD (at four and at 12 months, respectively) because of persistent allograft failure. Furthermore, 12 patients were on CPD because of temporary graft failure. In all these patients the pretransplant peritoneal dialysis (PD) catheter was utilized, with no complications. These data show that the persistence of the PD catheter after kidney transplantation has produced no infections or other complications. What is more, the catheter was safely utilized during acute rejection or primary allograft nonfunction.
Patient hospitalization was compared in 207 pediatric patients (age < or = 15 years at the start of dialysis) on chronic peritoneal dialysis (CPD) (127 patients) or center hemodialysis (HD) (80 patients), treated in 17 dialysis centers during the period 1989 to 1994, and followed up for at least three months. The hospitalization rate was expressed as hospital days per patient-month, and was calculated on the overall period of treatment and separately for the first and second year. Since the age at start of dialysis markedly differed between CPD (8.2 +/- 4.7 years) and HD (11.2 +/- 2.9 years) patients (with no HD patient younger than five years), results are separately presented in three patient groups: CPD patients aged < 5 years (A); CPD patients aged five to 15 years (B); HD patients (C). The duration of hospitalization was subdivided according to the following different causes: routine (monitoring of dialysis adequacy), complications of the modality, patient primary renal disease, and other causes. The results are presented in Table 1. A statistically significant difference in total days hospitalized was found between each of the two groups of CPD patients and the HD patients; the results for hospitalization for dialysis-related complications were higher in the group of younger children on CPD, while the difference between the two age-matched groups of patients on CPD and HD was not significant.
Previous studies on the peritoneal immune system described the presence of activated T lymphocytes in peritoneal effluents (PE) from patients on chronic peritoneal dialysis (CPD), and showed that mesothelial cells (MC) can present antigens to T cells. In order to better define phenotypic and functional characteristics of T cells and their interactions with MC, we isolated PE cells from 15 children. At the immunophenotypic analysis, high percentages of activated T cells were identified (mean value: 15% double staining for CD3/DR; 12% CD25+). T cells with gamma/delta T cell receptor (mean 5%) and natural killer cells (mean 17%) were also present in elevated numbers. MC lines (n = 7) and interleukin-2-dependent T cell lines (9 CD4+; 1 CD8+) were also obtained by incubating PE cells under different conditions. Two cell lines showed a major histocompatibility complex (MHC) restricted cytotoxic activity against autologous MC; two lines killed allogeneic MC; one line killed both autologous and allogeneic MC. Although the hypothesis that activated T cells could kill MC after recognition of surface structures modified by dialysis fluid, or during antigen presentation, needs to be further investigated, our data suggest that the subsets of lymphocytes we identified could play an important role in the mechanisms of peritoneal membrane defense.
We performed 22 nitrogen balance (NB) studies of three days' duration in 19 children (8.7 +/- 3.8 years) on chronic peritoneal dialysis (CPD) for 19.4 +/- 16.4 months. The dietary intakes were assessed by the double weighing method. Total nitrogen, protein, urea, and creatinine were analyzed in the dialysate and urine collected daily. Total nitrogen was also determined in the feces collected over the whole NB study period, using vegetable charcoal as a marker. The protein intake was 1.64 +/- 0.50 g/kg/day, corresponding to 126 +/- 40% of the recommended daily allowance (RDA) for normal children of the same age, and the calorie intake (diet+glucose from dialysate) reached 75 +/- 26% of RDA. Nitrogen losses were: 0.177 +/- 0.052 g/kg/day with peritoneal fluid and urine, and 0.028 +/- 0.018 g/kg/day with feces. The NB, positive in 17 out of 22 studies, ranged from -116 to +167 mg/kg/day (mean 44.0 +/- 66.2 mg/kg/day). A direct and significant correlation between NB and nitrogen intake (g/kg/day) (r = 0.562, p < 0.05) and total calorie intake (cal/kg/day) (r = 0.483, p < 0.05) has been observed. These data confirm the need to ensure in children on CPD an adequate nutritional intake, and further support the efforts to improve calorie intake.