De novo FZR1 loss-of-function variants cause developmental and epileptic encephalopathies including Myoclonic Atonic Epilepsy

S. Manivannan, Jolien Roovers, N. Smal, C. Myers, D. Turkdoğan, F. Roelens, Oguz Kanca, Hyung-Lok Chung, Tasja Scholz, K. Hermann, T. Bierhals, S. Çağlayan, Hannah Stamberger, H. Mefford, P. de Jonghe, Shinya Yamamoto, S. Weckhuysen, H. Bellen
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Abstract

FZR1, which encodes the Cdh1 subunit of the Anaphase Promoting Complex, plays an important role in neurodevelopment, both through the control of the cell cycle and through its multiple functions in post-mitotic neurons. In this study, the evaluation of 250 unrelated patients with developmental epileptic encephalopathies (DEE) and a connection on GeneMatcher led to the identification of three de novo missense variants in FZR1. Two variants led to the same amino acid change. All individuals had a DEE with childhood-onset generalized epilepsy, intellectual disability, mild ataxia, and normal head circumference. Two individuals were diagnosed with the DEE subtype Myoclonic Atonic Epilepsy (MAE). We provide gene burden testing using two independent statistical tests to support FZR1 association with DEE. Further, we provide functional evidence that the missense variants are loss-of-function (LOF) alleles using Drosophila neurodevelopment assays. Using three fly mutant alleles of the Drosophila homolog fzr and overexpression studies, we show that patient variants do not support proper neurodevelopment. Along with a recent report of a patient with neonatal-onset DEE with microcephaly who also carries a de novo FZR1 missense variant, our study consolidates the relationship between FZR1 and DEE, and expands the associated phenotype. We conclude that heterozygous LOF of FZR1 leads to DEE associated with a spectrum of neonatal to childhood-onset seizure types, developmental delay, and mild ataxia. Microcephaly can be present but is not an essential feature of FZR1-encephalopathy. In summary, our approach of targeted sequencing using novel gene candidates and functional testing in Drosophila will help solve undiagnosed MAE/DEE cases.
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新生FZR1功能丧失变异可引起发育性和癫痫性脑病,包括肌阵挛性张力性癫痫
FZR1编码后期促进复合体的Cdh1亚基,通过控制细胞周期和在有丝分裂后神经元中的多种功能,在神经发育中发挥重要作用。在本研究中,对250例不相关的发育性癫痫性脑病(DEE)患者进行评估,并在GeneMatcher上进行连接,鉴定出FZR1的三个新生错义变异。两种变体导致了相同的氨基酸变化。所有个体均有DEE伴儿童期全身性癫痫、智力残疾、轻度共济失调和头围正常。2人被诊断为DEE亚型肌阵挛性张力性癫痫(MAE)。我们使用两个独立的统计测试提供基因负担测试来支持FZR1与DEE的关联。此外,我们通过果蝇神经发育分析提供了功能证据,证明错义变体是功能丧失(LOF)等位基因。利用果蝇同源基因fzr的三个果蝇突变等位基因和过表达研究,我们发现患者变异不支持正常的神经发育。最近报道了一名新生儿起病的小头畸形DEE患者,该患者也携带新生的FZR1错义变异,我们的研究巩固了FZR1与DEE之间的关系,并扩展了相关表型。我们得出结论,FZR1的杂合LOF导致DEE与新生儿到儿童发作类型、发育迟缓和轻度共济失调相关。小头畸形可能存在,但不是fzr1脑病的基本特征。总之,我们在果蝇中使用新的候选基因和功能测试进行靶向测序的方法将有助于解决未确诊的MAE/DEE病例。
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