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Published on: March 14, 2017
PTH(1-34) replacement therapy in a child with hypoparathyroidism caused by a sporadic calcium receptor mutation
Todd A Theman1, Michael T Collins, David W Dempster
1Craniofacial and Skeletal Diseases Branch, National Institute of Dental and Craniofacial Research, National Institutes of Health, Department of Health and Human Services, Bethesda, Maryland, USA.
Insights
Long-term parathyroid hormone (PTH) treatment in autosomal dominant hypocalcemia (ADH) increased bone mass and improved mineral levels without negatively impacting mineralization. However, it did not prevent nephrocalcinosis and suggests a role for the calcium-sensing receptor (CaR) in bone mineralization.
Area of Science:
- Endocrinology
- Bone Biology
- Genetics
Background:
- Autosomal dominant hypocalcemia (ADH) results from calcium-sensing receptor (CaR) mutations.
- Parathyroid hormone (PTH) treatment may offer benefits over conventional therapy but has unknown long-term skeletal effects, especially in children.
Observation:
- A 20-year-old female with ADH received continuous PTH(1-34) treatment from early childhood.
- Bone biopsies were analyzed using histomorphometry and quantitative backscattered electron imaging (qBEI).
- Data were compared with matched controls with and without ADH, some receiving PTH treatment.
Findings:
- Long-term PTH treatment in ADH increased cancellous bone volume and bone mass.
- Bone mineralization was not negatively impacted, though BMDD shifted towards lower mineralization in PTH-treated ADH patients.
- Hypercalciuria and hypermagnesuria persisted, and nephrocalcinosis developed despite normal serum calcium levels.
Implications:
- PTH replacement therapy appears safe for long-term use in children with ADH.
- The calcium-sensing receptor (CaR) may play a role in human bone matrix mineralization.
- PTH treatment improves mineral control but does not prevent all complications like nephrocalcinosis.
Abstract:
Autosomal dominant hypocalcemia (ADH) is an inherited form of hypoparathyroidism caused by activating mutations in the calcium-sensing receptor (CaR). Treatment with PTH(1-34) may be superior to conventional therapy but is contraindicated in children, and long-term effects on the skeleton are unknown. The patient is a 20-yr-old female with ADH treated with PTH continuously since 6 yr and 2 mo of age. A bone biopsy was obtained for histomorphometry and quantitative backscattered electron imaging (qBEI). Her data were compared with one age-, sex-, and length of hypoparathyroidism-matched control not on PTH and two sex-matched ADH controls before and after 1 yr of PTH. The patient's growth was normal. Hypercalciuria and hypermagnesuria persisted despite normal or subnormal serum calcium and magnesium levels. Nephrocalcinosis, without evidence of impaired renal function, developed by 19 yr of age. Cancellous bone volume was dramatically elevated in the patient and in ADH controls after 1 yr of PTH. BMD distribution (BMDD) by qBEI of the patient and ADH controls was strikingly shifted toward lower mineralization compared with the non-ADH control. Moreover, the ADH controls exhibited a further reduction in mineralization after 1 yr of PTH. These findings imply a role for CaR in bone matrix mineralization. There were no fractures or osteosarcoma. In conclusion, long-term PTH replacement in a child with ADH was not unsafe, increased bone mass without negatively impacting mineralization, and improved serum mineral control but did not prevent nephrocalcinosis. Additionally, this may be the first evidence of a role for CaR in human bone.
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