FAM111A is dispensable for electrolyte homeostasis in mice
Autosomal dominant mutations in FAM111A are causative for Kenny-Caffey syndrome type 2. Patients with Kenny-Caffey syndrome suffer from severe growth retardation, skeletal dysplasia, hypoparathyroidism, hypocalcaemia, hyperphosphataemia and hypomagnesaemia. While recent studies have reported FAM111A...
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Veröffentlicht in: | Scientific reports 2022-06, Vol.12 (1), p.10211-10211, Article 10211 |
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Zusammenfassung: | Autosomal dominant mutations in
FAM111A
are causative for Kenny-Caffey syndrome type 2. Patients with Kenny-Caffey syndrome suffer from severe growth retardation, skeletal dysplasia, hypoparathyroidism, hypocalcaemia, hyperphosphataemia and hypomagnesaemia. While recent studies have reported FAM111A to function in antiviral response and DNA replication, its role in regulating electrolyte homeostasis remains unknown. In this study, we assessed the role of FAM111A in the regulation of serum electrolyte balance using a
Fam111a
knockout (
Fam111a
−
/
−
) C57BL/6 N mouse model.
Fam111a
−
/
−
mice displayed normal weight and serum parathyroid hormone (PTH) concentration and exhibited unaltered magnesium, calcium and phosphate levels in serum and 24-hour urine. Expression of calciotropic (including
Cabp28k, Trpv5, Klotho
and
Cyp24a1
), magnesiotropic (including
Trpm6
,
Trpm7
,
Cnnm2
and
Cnnm4
) and phosphotropic (
Slc20a1
,
Slc20a2
,
Slc34a1
and
Slc34a3
) genes in the kidneys, duodenum and colon were not affected by
Fam111a
depletion. Only
Slc34a2
expression was significantly upregulated in the duodenum, but not in the colon. Analysis of femurs showed unaffected bone morphology and density in
Fam111a
−/−
mice. Kidney and parathyroid histology were also normal in
Fam111a
−/−
mice. In conclusion, our study is the first to characterise the function of FAM111A in vivo and we report that mice lacking FAM111A exhibit normal electrolyte homeostasis on a standard diet. |
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ISSN: | 2045-2322 2045-2322 |
DOI: | 10.1038/s41598-022-14054-8 |