Related Experiment Video
Updated: Nov 6, 2025

Estimation of Urinary Nanocrystals in Humans using Calcium Fluorophore Labeling and Nanoparticle Tracking Analysis
Published on: February 9, 2021
The Struggling Odyssey of Infantile Primary Hyperoxaluria
Adrien Guillaume1,2, Benedetta Chiodini2, Brigitte Adams2
1Department of Neonatology, Hôpital Erasme, Université Libre de Bruxelles (ULB), Brussels, Belgium.
Insights
Infantile Primary Hyperoxaluria type I (IPH1) management is challenging, requiring intensive dialysis and transplantation. While survival is encouraging, significant morbidity persists, highlighting the need for new treatments.
Area of Science:
- Nephrology
- Genetics
- Pediatrics
Background:
- Primary Hyperoxaluria type I (PH1) causes severe oxalate overproduction, leading to kidney failure and systemic deposition.
- Infantile forms (IPH1) result in end-stage renal disease (ESRD) within the first years of life.
- Management typically involves intensive dialysis and liver-kidney transplantation.
Purpose of the Study:
- To review the management and outcomes of infants with IPH1 who reached ESRD within their first year of life.
- To analyze the effectiveness of different transplantation strategies (combined vs. sequential) and dialysis modalities.
Main Methods:
- Retrospective review of medical records for seven infants with IPH1 diagnosed between 2005 and 2018.
- Analysis of data on age at ESRD, dialysis initiation, transplantation (liver and kidney), and patient outcomes.
Main Results:
- Seven infants reached ESRD at a median age of 3.5 months, starting dialysis at 4 months.
- All patients underwent liver transplantation (LT); six received kidney transplantation (KT). Sequential LT-KT was used in five patients.
- No deaths occurred; median follow-up was 3 years with a mean eGFR of 64 ml/min/1.73 m².
- All patients had retinal and bone lesions; five experienced bone fractures, indicating significant morbidity.
Conclusions:
- Despite improved survival with transplantation, infantile PH1 management remains challenging due to severe morbidity.
- Encouraging survival rates are noted, but long-term complications like bone and retinal lesions persist.
- Emerging RNA-interference therapies offer hope for improved future management of IPH1.
Abstract:
Introduction: Oxalate overproduction in Primary Hyperoxaluria type I (PH1) leads to progressive renal failure and systemic oxalate deposition. In severe infantile forms of PH1 (IPH1), end-stage renal disease (ESRD) occurs in the first years of life. Usually, the management of these infantile forms is challenging and consists in an intensive dialysis regimen followed by a liver-kidney transplantation (combined or sequential). Methods: Medical records of all infants with IPH1 reaching ESRD within the first year of life, diagnosed and followed between 2005 and 2018 in two pediatric nephrology departments in Brussels and Paris, have been reviewed. Results: Seven patients were included. They reached ESRD at a median age of 3.5 (2-7) months. Dialysis was started at a median age of 4 (2-10 months). Peritoneal dialysis (PD) was the initial treatment for 6 patients and hemodialysis (HD) for one patient. Liver transplantation (LT) was performed in all patients and kidney transplantation (KT) in six of them. A sequential strategy has been chosen in 5 patients, a combined in one. The kidney transplanted as part of the combined strategy was lost. Median age at LT and KT was 25 (10-41) months and 32.5 (26-75) months, respectively. No death occurred in the series. At the end of a median follow-up of 3 years, mean eGFR was 64 ± 29 ml/min/1.73 m2. All patients presented retinal and bone lesions and five patients presented bones fractures. Conclusion: Despite encouraging survival figures, the morbidity in IPH1 patients remains extremely heavy and its management presents a huge challenge. Thanks to the newly developed RNA-interference drug, the future holds brighter prospects.
Related Concept Videos
Protein Import into the Peroxisomes
Peroxisomal Protein Import:
Peroxisomes lack the genetic machinery required to code for their own proteins. Hence, most peroxisomal membrane, lumenal and transmembrane proteins are synthesized in the cytoplasm or ER and transported to the peroxisome...
Inborn Errors of Metabolism
Chronic Kidney Disease I: Introduction
Urea Cycle
Renal Regulation of Acid-Base Balance
In the kidneys, cells within the proximal convoluted tubules (PCT) and the collecting ducts secrete hydrogen ions (H+) into the tubular fluid. Specifically, in the PCT, Na+/H+ antiporters secrete H+ while reabsorbing Na+.
However, the intercalated cells in...
Formation of Dilute Urine
Filtrate Osmolarity in the PCT
Initially, as the filtrate passes through the proximal convoluted tubule (PCT), its...

