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Insights from a transgenic mouse model on the role of SLC26A2 in health and disease. | LitMetric

AI Article Synopsis

  • Mutations in the SLC26A2 gene lead to various recessive chondrodysplasias, ranging from severe conditions like achondrogenesis 1B to milder forms like recessive multiple epiphyseal dysplasia.
  • The gene plays a key role in the transport of sulfate, essential for synthesizing proteoglycans that support cartilage health.
  • A transgenic mouse with a Slc26a2 mutation showed skeletal abnormalities and impaired sulfate uptake, making it a useful model for studying related human disorders and potential treatments.

Article Abstract

Mutations in the SLC26A2 cause a family of recessive chondrodysplasias that includes in order of decreasing severity achondrogenesis 1B, atelosteogenesis 2, diastrophic dysplasia and recessive multiple epiphyseal dysplasia. The gene encodes for a widely distributed sulfate/chloride antiporter of the cell membrane whose function is crucial for the uptake of inorganic sulfate that is needed for proteoglycan sulfation. To investigate the mechanisms leading to skeletal dysplasia, we generated a transgenic mouse with a mutation in Slc26a2 causing a partial loss of function of the sulfate transporter. Homozygous mutant mice were characterized by skeletal dysplasia with chondrocytes of irregular size, delay in the formation of the secondary ossification centre and osteoporosis of long bones. Impaired sulfate uptake was demonstrated in chondrocytes, osteoblasts and fibroblasts, but proteoglycan undersulfation was detected only in cartilage. The similarity with human diastrophic dysplasia makes this mouse a model to explore pathogenetic and therapeutic aspects of SLC26A2-related disorders.

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