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SLC4A2 Deficiency Causes a New Type of Osteopetrosis
Jing-Yi Xue1,2, Giedre Grigelioniene3, Zheng Wang1,4
1Laboratory for Bone and Joint Diseases, RIKEN Center for Integrative Medical Sciences, Tokyo, Japan.
Abstract:
Osteopetrosis is a group of rare inherited skeletal disorders characterized by a marked increase in bone density due to deficient bone resorption. Pathogenic variants in several genes involved in osteoclast differentiation and/or function have been reported to cause osteopetrosis. Solute carrier family 4 member 2 (SLC4A2, encoding anion exchanger 2) plays an important role in osteoclast differentiation and function by exchange of Cl- with HCO3- . Biallelic Slc4a2 loss-of-function mutations in mice and cattle lead to osteopetrosis with osteoclast deficiency; however, pathogenic SLC4A2 variants in humans have not been reported. In this study, we describe a patient with autosomal recessive osteopetrosis due to biallelic pathogenic variants in SLC4A2. We identified novel compound heterozygous variants in SLC4A2 (NM_003040.4: c.556G>A [p.A186T] and c.1658T>C [p.V553A]) by exome sequencing. The measurement of intracellular Cl- showed that the variants decrease the anion exchange activity of SLC4A2. The impact of the variants on osteoclast differentiation was assessed by a gene knockout-rescue system using a mouse macrophage cell line, RAW 264.7. The Slc4a2-knockout cells show impaired osteoclastogenesis, which was rescued by the wild-type SLC4A2, but not by the mutant SLC4A2s. Immunofluorescence and pit assay revealed that the mutant SLC4A2s leads to abnormal podosome belt formation with impaired bone absorption. This is the first report on an individual affected by SLC4A2-associated osteopetrosis (osteopetrosis, Ikegawa type). With functional studies, we prove that the variants lead to SLC4A2 dysfunction, which altogether supports the importance of SLC4A2 in human osteoclast differentiation. © 2021 American Society for Bone and Mineral Research (ASBMR).
Insights
This study identifies pathogenic variants in the SLC4A2 gene causing autosomal recessive osteopetrosis in a patient. These genetic changes impair osteoclast function, leading to increased bone density and the first reported human cases of SLC4A2-associated osteopetrosis.
Area of Science:
- Genetics
- Molecular Biology
- Skeletal Biology
Background:
- Osteopetrosis is a rare inherited skeletal disorder characterized by increased bone density due to impaired osteoclast resorption.
- Pathogenic variants in genes regulating osteoclast function cause osteopetrosis.
- Solute carrier family 4 member 2 (SLC4A2), encoding anion exchanger 2, is crucial for osteoclast differentiation and function.
Observation:
- A patient with autosomal recessive osteopetrosis was identified with novel compound heterozygous variants in SLC4A2.
- Exome sequencing revealed specific variants (c.556G>A [p.A186T] and c.1658T>C [p.V553A]) in SLC4A2.
- Intracellular chloride measurements indicated reduced anion exchange activity of the mutant SLC4A2.
Findings:
- A gene knockout-rescue system using RAW 264.7 cells demonstrated that mutant SLC4A2 variants impair osteoclast differentiation and function.
- Osteoclastogenesis was rescued by wild-type SLC4A2 but not by the mutant variants.
- Mutant SLC4A2 led to abnormal podosome belt formation and reduced bone absorption, confirming SLC4A2's role in osteoclast activity.
Implications:
- This study reports the first human cases of osteopetrosis associated with pathogenic SLC4A2 variants (osteopetrosis, Ikegawa type).
- Functional studies confirm that SLC4A2 dysfunction due to these variants leads to impaired osteoclast differentiation and bone resorption.
- The findings highlight the critical role of SLC4A2 in human osteoclast biology and skeletal development.
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