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Published on: August 9, 2024
Selenoprotein P is the essential selenium transporter for bones
Nicole Pietschmann1, Eddy Rijntjes, Antonia Hoeg
1Institute for Experimental Endocrinology, Charité-Universitätsmedizin Berlin, D-13353 Berlin, Germany. lutz.schomburg@charite.de.
Insights
Selenium (Se) is crucial for bone health. Selenoprotein P (SePP) acts as the primary Se transporter to bones, with a feedback mechanism to ensure Se uptake during deficiency.
Area of Science:
- Biochemistry
- Bone Biology
- Nutritional Science
Background:
- Selenium (Se) is vital for bone physiology, evidenced by Kashin-Beck disease, an Se-dependent osteoarthritis.
- Mutations in SECIS binding protein 2 (SBP2) impair selenoprotein biosynthesis and delay bone development.
- The role of circulating selenoprotein P (SePP) in bone homeostasis remains unclear.
Purpose of the Study:
- To investigate the function of SePP in bone homeostasis.
- To determine the mechanism of selenium transport to bones.
- To explore potential feedback mechanisms in Se metabolism.
Main Methods:
- Analysis of murine models with altered Se metabolism.
- Assessment of selenoprotein gene and biosynthesis factor expression in bones.
- Measurement of Se concentrations in serum and bone.
- Evaluation of SePP receptor expression (Lrp8, Lrp2) in bones.
- Generation of SePP-transgenic mice with cell-specific expression in hepatocytes.
Main Results:
- Selenoprotein genes and biosynthesis factors are expressed in bones, with bone Se localized to the organic matrix.
- Sepp-knockout mice showed a 25-fold decrease in serum Se but only a 2.5-fold decrease in bone Se.
- Hepatocyte-specific SePP expression restored bone Se levels in knockout mice.
- Lrp8, a SePP receptor, was found in bones and its mRNA increased in Sepp-knockout mice.
- Lrp2 was absent in bones.
Conclusions:
- SePP is the essential Se transporter to bones.
- A novel feedback mechanism enhances Se uptake in Se-deprived bones.
- Findings contribute to understanding hepatic osteodystrophy and bone phenotypes in selenoprotein biosynthesis disorders.
Abstract:
Selenium (Se) plays an important role in bone physiology as best reflected by Kashin-Beck disease, an endemic Se-dependent osteoarthritis. Bone development is delayed in children with mutations in SECIS binding protein 2 (SBP2), a central factor for selenoprotein biosynthesis. Circulating selenoprotein P (SePP) is positively associated with bone turnover in humans, yet its function for bone homeostasis is not known. We have analysed murine models of altered Se metabolism. Most of the known selenoprotein genes and factors needed for selenoprotein biosynthesis are expressed in bones. Bone Se is not associated with the mineral but exclusively with the organic matrix. Genetic ablation of Sepp-expression causes a drastic decline in serum (25-fold) but only a mild reduction in bone (2.5-fold) Se concentrations. Cell-specific expression of a SePP transgene in hepatocytes efficiently restores bone Se levels in Sepp-knockout mice. Of the two known SePP receptors, Lrp8 was detected in bones while Lrp2 was absent. Interestingly, Lrp8 mRNA concentrations were strongly increased in bones of Sepp-knockout mice likely in order to counteract the developing Se deficiency. Our data highlight SePP as the essential Se transporter to bones, and suggest a novel feedback mechanism for preferential uptake of Se in Se-deprived bones, thereby contributing to our understanding of hepatic osteodystrophy and the consistent bone phenotype observed in subjects with inherited selenoprotein biosynthesis mutations.
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