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Published on: July 3, 2020
Six ALPL gene variants in five children with hypophosphatasia
Na Su1,2, Min Zhu1, Xinran Cheng2
1Department of Endocrinology, Children's Hospital of Chongqing Medical University, National Clinical Research Center for Child Health and Disorders, Ministry of Education Key Laboratory of Child Development and Disorders, Chongqing Key Laboratory of Pediatrics, Chongqing, China.
Insights
This study investigated genetic variants in the alkaline phosphatase (ALPL) gene in children with hypophosphatasia (HPP). Identified ALPL gene variants reduce enzyme activity and protein levels, impacting bone mineralization in HPP patients.
Area of Science:
- Genetics
- Biochemistry
- Pediatrics
Background:
- Hypophosphatasia (HPP) is a rare inherited disorder affecting bone and tooth mineralization.
- It is caused by mutations in the alkaline phosphatase (ALPL) gene, which encodes tissue-nonspecific alkaline phosphatase (TNSALP).
Purpose of the Study:
- To investigate the pathogenic mechanisms of ALPL gene variants in five children with HPP.
- To identify and characterize novel ALPL gene variants associated with HPP.
Main Methods:
- Clinical and genetic analyses were performed on five HPP children.
- Molecular and cellular mechanisms were investigated using immunofluorescence, enzyme activity assays, and protein expression assays on HEK-293T cells transfected with ALPL variant plasmids.
Main Results:
- Six ALPL variants were identified in five HPP children, including three novel variants.
- Transfection studies showed that ALPL variants reduced alkaline phosphatase activity and protein content, with varying degrees of severity.
- Immunofluorescence indicated decreased cellular membrane expression of alkaline phosphatase due to these variants.
Conclusions:
- The identified ALPL variants contribute to HPP by downregulating TNSALP enzyme activity through effects on protein expression and modifications.
- Clinical severity can vary among individuals with the same variant due to factors like dominant negative effects and environmental influences.
- The molecular mechanisms underlying ALPL gene expression in HPP are complex and require further investigation.
Background:
Hypophosphatasia (HPP) is a rare hereditary disorder characterized by defective bone and tooth mineralization caused by mutations in the alkaline phosphatase (ALPL) gene encoding tissue-nonspecific alkaline phosphatase (TNSALP). Here we performed clinical and molecular studies on 5 HPP children to investigate the pathogenic mechanisms of the ALPL gene variants.
Methods:
Clinical and genetic analyses were performed on 5 HPP children, and the loci where ALPL variants were identified. Plasmids containing the relevant loci were constructed. The molecular and cellular mechanisms of the pathogenic ALPL variants were investigated by cellular immunofluorescence, enzyme activity assay, and protein expression assay.
Results:
A total of 6 ALPL variants were identified in 5 HPP children: proband 1: c.346G>A (p.A116T); proband 2: c.346G>A (p.A116T)/deletions from c.1097 to c.1099 CCT (p.T366_S367deli) compound heterozygous variant; proband 3: insertion of G from c.1014 to c.1015 (p.H338fs)/c.1446C>A (p.H482Q) compound heterozygous variant; proband 4: c.920C>T (p.P307L); and proband 5: c.883A>G (p.M295V). Twenty-four hours after the HEK-293T was transfected with different variant plasmids, its alkaline phosphatase activity and enzyme protein content were reduced compared with the wild type, and there were differences among different variants. Except for 1014-G-1015+C1446A, the degree of reduction in enzyme activity was negatively correlated with the severity of clinical manifestations. Immunofluorescence revealed that the variants (especially c.883A>G and c.920C>T) caused a decrease in alkaline phosphatase expression in the cellular membrane.
Conclusions:
In total, 3 novel variants were identified in these 5 HPP children, the discovery of which will enrich the human ALPL gene mutation database. Different variants in the ALPL gene can downregulate the activity of TNSALP enzyme (and thus affect its function) by affecting protein expression and translational modifications. The same variant may cause clinical manifestations of different severities in different individuals due to the presence of dominant negative effects, alterations in noncoding sequences, blind area of intron regulatory region sequencing, and variations in environmental and individual factors. The molecular mechanisms via which the ALPL gene exerts its expression effect in vivo are highly variable and warrant further investigation.
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