Abstract

Schaaf-Yang syndrome (SYS) is a neurodevelopmental disorder caused by truncating variants in the paternal allele of MAGEL2, located in the Prader-Willi critical region, 15q11-q13. Although the phenotypes of SYS overlap those of Prader-Willi syndrome (PWS), including neonatal hypotonia, feeding problems, and developmental delay/intellectual disability, SYS patients show autism spectrum disorder and joint contractures, which are atypical phenotypes for PWS. Therefore, we hypothesized that the truncated Magel2 protein could potentially produce gain-of-function toxic effects. To test the hypothesis, we generated two engineered mouse models; one, an overexpression model that expressed the N-terminal region of Magel2 that was FLAG tagged with a strong ubiquitous promoter, and another, a genome-edited model that carried a truncating variant in Magel2 generated using the CRISPR/Cas9 system. In the overexpression model, all transgenic mice died in the fetal or neonatal period indicating embryonic or neonatal lethality of the transgene. Therefore, overexpression of the truncated Magel2 could show toxic effects. In the genome-edited model, we generated a mouse model carrying a frameshift variant (c.1690_1924del; p(Glu564Serfs*130)) in Magel2. Model mice carrying the frameshift variant in the paternal or maternal allele of Magel2 were termed Magel2P:fs and Magel2M:fs, respectively. The imprinted expression and spatial distribution of truncating Magel2 transcripts in the brain were maintained. Although neonatal Magel2P:fs mice were lighter than wildtype littermates, Magel2P:fs males and females weighed the same as their wildtype littermates by eight and four weeks of age, respectively. Collectively, the overexpression mouse model may recapitulate fetal or neonatal death, which are the severest phenotypes for SYS. In contrast, the genome-edited mouse model maintains genomic imprinting and distribution of truncated Magel2 transcripts in the brain, but only partially recapitulates SYS phenotypes. Therefore, our results imply that simple gain-of-function toxic effects may not explain the patho-mechanism of SYS, but rather suggest a range of effects due to Magel2 variants as in human SYS patients.

Highlights

  • In 2013, the first four individuals with truncating variants in the paternal allele of MAGEL2 were reported, and later described as having Schaaf-Yang syndrome (SYS, OMIM#615547)

  • The phenotypes of SYS patients overlap those of Prader-Willi syndrome (PWS, OMIM#176270), including neonatal hypotonia, feeding problems and developmental delay/ intellectual disability (DD/ID) [1]

  • PCAGGS1-Magel2-FLAG vector was injected into the pronuclei of fertilized oocytes to obtain mice that overexpressed the N-terminal region of Magel2 with a FLAG tag

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Summary

Introduction

In 2013, the first four individuals with truncating variants in the paternal allele of MAGEL2 were reported, and later described as having Schaaf-Yang syndrome (SYS, OMIM#615547). The phenotypes of SYS patients overlap those of Prader-Willi syndrome (PWS, OMIM#176270), including neonatal hypotonia, feeding problems and developmental delay/ intellectual disability (DD/ID) [1]. PWS occurs as the result of absence of expression of paternal genes from chromosome 15q11.2-q13 [3, 4]. Chromosome 15q11.2-q13 contains paternal-only expressed genes encoding polypeptides (MKRN3, MAGEL2, NDN, NPAP1 and SNURF-SNRPN) [1]. It contains snoRNAs (SNORD115, 116) which show paternal-only expression [5]. Patients with a paternally inherited deletion including MAGEL2, but not SNRPN/SNORD116, have a milder phenotype than those with truncating variants in MAGEL2 [7, 8]. A gain-of-function mechanism in MAGEL2 was suggested as the pathological mechanism underlying SYS [9]

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