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Targeted Next-generation Sequencing and Bioinformatics Pipeline to Evaluate Genetic Determinants of Constitutional Disease
Published on: April 4, 2018
Mutations of family with sequence similarity 20-member C gene causing lethal and nonlethal Raine syndrome causes
Peihong Liu1,2, Jiaxuan Li1, Linghao Tang3
1Department of Stomatology, The First Affiliated Hospital of Harbin Medical University, Harbin, China.
Abstract:
Family with sequence similarity 20-member C (FAM20C) is a kinase specific to most of the secreted phosphoproteome. FAM20C has been identified as the causative gene of Raine syndrome, initially characterized by lethal osteosclerosis bone dysplasia. However, since the identification of the cases of nonlethal Raine syndrome characterized by hypophosphatemia rickets, the previous definition of Raine syndrome has become debatable and raised a question about the role of mutations of FAM20C in controversial skeletal manifestation in the two forms of the disease. In this study, we aimed to investigate the influence of FAM20C mutations on skeletogenesis. We developed transgenic mice expressing Fam20c mutations mimicking those associated with human lethal and nonlethal Raine syndrome. The results revealed that transgenic mice expressing the mutant Fam20c found in the lethal (KO;G374R) and nonlethal (KO;D446N) Raine syndrome exhibited osteomalacia without osteosclerotic features. Additionally, both mutants significantly increased the expression of the Fgf23, indicating that Fam20c deficiency in skeletal compartments causes hypophosphatemia rickets. Furthermore, as FAM20C kinase activity catalyzes the phosphorylation of secreted proteomes other than those in the skeletal system, global FAM20C deficiency may trigger alterations in other systems resulting in osteosclerosis secondary to hypophosphatemia rickets. Together, the findings of this study suggest that FAM20C deficiency primarily causes hypophosphatemia rickets or osteomalacia; however, the heterogeneous skeletal manifestation in Raine syndrome was not determined solely by specific mutations of FAM20C. The findings also implicated that rickets or osteomalacia caused by FAM20C deficiency would deteriorate into osteosclerosis by the defects from other systems or environmental impacts.
Insights
Family with sequence similarity 20-member C (FAM20C) deficiency primarily causes hypophosphatemia rickets and osteomalacia. Skeletal manifestations in Raine syndrome are not solely due to FAM20C mutations but can be influenced by other factors.
Area of Science:
- Biochemistry
- Genetics
- Skeletal Biology
Background:
- Family with sequence similarity 20-member C (FAM20C) is a key kinase for secreted proteins.
- FAM20C mutations cause Raine syndrome, a disorder with variable skeletal presentations, including lethal osteosclerosis and nonlethal hypophosphatemia rickets.
- The specific role of FAM20C mutations in the diverse skeletal phenotypes of Raine syndrome remains unclear.
Purpose of the Study:
- To investigate the impact of FAM20C mutations on skeletogenesis.
- To elucidate the mechanisms underlying the heterogeneous skeletal manifestations in Raine syndrome.
Main Methods:
- Development of transgenic mouse models expressing FAM20C mutations associated with human lethal (KO;G374R) and nonlethal (KO;D446N) Raine syndrome.
- Analysis of skeletal phenotypes, including bone mineralization and gene expression in mutant mice.
Main Results:
- Transgenic mice with lethal and nonlethal FAM20C mutations displayed osteomalacia but not osteosclerosis.
- Both FAM20C mutants significantly elevated Fgf23 expression, confirming FAM20C deficiency in skeletal tissues leads to hypophosphatemia rickets.
- Global FAM20C deficiency may induce osteosclerosis secondary to hypophosphatemia rickets due to effects on other organ systems.
Conclusions:
- FAM20C deficiency is the primary cause of hypophosphatemia rickets and osteomalacia.
- The varied skeletal phenotypes in Raine syndrome are not exclusively determined by specific FAM20C mutations.
- Rickets/osteomalacia from FAM20C deficiency may progress to osteosclerosis influenced by other systemic defects or environmental factors.
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