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Published on: June 25, 2010
An Explorative Study into the Aetiology of Developmental Dysplasia of the Hip Using Targeted Urine Metabolomics
Amanda M L Rhodes1, Sehrish Ali2, Magdalena Minnion2
1Orthopaedic Surgery, University Hospital Southampton, Southampton SO16 6YD, UK.
Insights
Developmental dysplasia of the hip (DDH) may be linked to altered sulphate metabolism in infants. This study found higher urinary sulphate levels in DDH infants, suggesting a systemic issue potentially addressable by nutritional intervention.
Area of Science:
- Biochemistry
- Pediatrics
- Metabolomics
Background:
- Developmental dysplasia of the hip (DDH) is a common congenital musculoskeletal disorder with an unknown cause.
- Nutrient provision and redox balance are vital for fetal development and tissue formation.
Purpose of the Study:
- To investigate biochemical pathways, specifically inorganic anions and lipid peroxidation, in the etiology of DDH.
- To explore the role of urinary thiosulphate, sulphate, nitrate, phosphate, nitrite, and thiobarbituric acid reactive substances (TBARS) in DDH.
Main Methods:
- Urine samples from 99 infants (30 with DDH, 69 controls) aged 13-61 days were analyzed.
- Ion chromatography-mass spectrometry, high-performance liquid chromatography, and colorimetric assays were used to quantify various metabolites.
- Creatinine and osmolality were measured for normalization of hydration and renal function.
Main Results:
- Infants with DDH showed significantly different concentrations of thiosulphate, TBARS, and creatinine compared to controls.
- Urine osmolality was lower in the DDH group, indicating more diluted urine.
- After adjusting for osmolality, significantly higher urinary sulphate levels were observed in infants with DDH.
Conclusions:
- This is the first study to link inorganic anions, particularly sulphate, to DDH.
- Altered sulphate uptake, formation, or renal handling may contribute to DDH, suggesting a systemic disease.
- Findings highlight the potential for nutritional interventions and the importance of metabolomic analysis normalized for hydration status.
Abstract:
Developmental dysplasia of the hip (DDH) is the most prevalent congenital musculoskeletal disorder, yet its cause remains unknown. Adequate nutrient provision and coordinated electron exchange (redox) processes are critical for foetal growth and tissue development. This novel study sought to explore specific biochemical pathways in skeletal development for potential involvement in the aetiology of DDH. Spot urine samples were collected from infants, aged 13-61 days, with and without DDH. Ion chromatography-mass spectrometry was used to quantify thiosulphate, sulphate, nitrate, and phosphate, whilst nitrite was quantified using high-performance liquid chromato-graphy. Thiobarbituric acid reactive substances (TBARS) were measured as markers of lipid peroxidation. Creatinine and osmolality were determined by a 96-well plate assay and micro-osmometer to potentially normalise values for renal function, lean body mass, and hydration status. Urine samples were analysed from 99 babies: 30 with DDH and 69 age-matched non-DDH controls. Thiosulphate, TBARS, and creatinine concentrations differed between the DDH group and the controls (p = 0.025, 0.015, and 0.004 respectively). Urine osmolality was significantly lower in DDH compared to the controls (p = 0.036), indicative of the production of a more diluted urine in DDH infants. Following adjustment for osmolality, significant differences became apparent in urinary sulphate levels in DDH (p = 0.035) whereas all other parameters were similar between the groups. This is the first study to assess the potential role of these inorganic anions in DDH. The higher levels of sulphate found in infants with DDH suggests either enhanced intake from milk, increased endogenous formation, or impaired renal reabsorption. This investigation demonstrates the power of urine metabolomics and highlights the importance of normalisation for hydration status to disentangle developmental disorders. Our results strongly suggest that DDH is a systemic disease associated with altered uptake, formation, or handling of sulphate. There is potential for new opportunities in the prevention or treatment of DDH via nutritional intervention.
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