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GNAS AS2 methylation status enables mechanism-based categorization of pseudohypoparathyroidism type 1B
Yorihiro Iwasaki, Monica Reyes, Harald Jüppner, Murat Bastepe
Yorihiro Iwasaki, Monica Reyes, Harald Jüppner, Murat Bastepe
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Research Article Endocrinology Genetics

GNAS AS2 methylation status enables mechanism-based categorization of pseudohypoparathyroidism type 1B

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Abstract

Pseudohypoparathyroidism type 1B (PHP1B) results from aberrant genomic imprinting at the GNAS gene. Defining the underlying genetic cause in new patients is challenging because various genetic alterations (e.g., deletions, insertions) within the GNAS genomic region, including the neighboring STX16 gene, can cause PHP1B, and the genotype-epigenotype correlation has not been clearly established. Here, by analyzing patients with PHP1B with a wide variety of genotypes and epigenotypes, we identified a GNAS differentially methylated region (DMR) of distinct diagnostic value. This region, GNAS AS2, was hypomethylated in patients with genetic alterations located centromeric but not telomeric of this DMR. The AS2 methylation status was captured by a single probe of the methylation-sensitive multiplex ligation–dependent probe amplification (MS-MLPA) assay utilized to diagnose PHP1B. In human embryonic stem cells, where NESP55 transcription regulates GNAS methylation status on the maternal allele, AS2 methylation depended on 2 imprinting control regions (STX16-ICR and NESP-ICR) essential for NESP55 transcription. These results suggest that the AS2 methylation status in patients with PHP1B reflects the position at which the genetic alteration affects NESP55 transcription during an early embryonic period. Therefore, AS2 methylation levels can enable mechanistic PHP1B categorization based on genotype-epigenotype correlation and, thus, help identify the underlying molecular defect in patients.

Authors

Yorihiro Iwasaki, Monica Reyes, Harald Jüppner, Murat Bastepe

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Figure 5

The effect of retrotransposon sequences on the passing-through transcription

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The effect of retrotransposon sequences on the passing-through transcrip...
(A) A UCSC genome browser track showing the locations of retrotransposon insertions identified in 2 kindreds (#1 and #2; refs. 12, 14). Locations of the AS2 MSRE-qPCR amplicon and the 320 probe are also shown. (B) A schematic representation of the location of a highly homologous sequence in the retrotransposon identified in kindreds #1 and #2. The red arrow indicates the location of the tandemly repeated polyadenylation signal. Blue and yellow arrows indicate surrounding cloned regions for the reporter assay. (C and D) Luciferase assays in hESCs. Forty-eight hours following the transfection of each reporter plasmid in WT hESCs, firefly counts were measured and normalized using Renilla counts. The polyadenylation signal portion with surrounding sequences derived from kindred #1 was cloned into the STX16-ICR/NESP55 promoter-driven firefly luciferase plasmid (n = 4). Rightward and leftward arrows indicate sense and antisense orientation, respectively. STX16-ICR, NESP55 promoter and STX16-ICR; STX16-ICR+SVA, NESP55 promoter and STX16-ICR with sense-oriented insertion of transposon sequence; STX16-ICR+SVAinv, NESP55 promoter and STX16-ICR with antisense-oriented insertion of transposon sequence (C). Inserted kindred #1–derived sequence used in C was truncated as indicated (TR1-TR3) (n = 3) (D). Intergroup comparisons were performed by 1-way ANOVA with post hoc Dunnett multiple comparison test. *P < 0.05, ****P < 0.0001.

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