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FBXO22基因缺陷定义了一种与独特表观遗传特征相关的生长受限和多系统异常的多效性综合征。

FBXO22 deficiency defines a pleiotropic syndrome of growth restriction and multi-system anomalies associated with a unique epigenetic signature.

作者信息

Ramakrishna Navin B, Mohamad Sahari Umar Bin, Johmura Yoshikazu, Ali Nur Ain, Alghamdi Malak, Bauer Peter, Khan Suliman, Ordoñez Natalia, Ferreira Mariana, Pinto Basto Jorge, Alkuraya Fowzan S, Faqeih Eissa Ali, Mori Mari, Almontashiri Naif A M, Al Shamsi Aisha, ElGhazali Gehad, Abu Subieh Hala, Al Ojaimi Mode, El-Hattab Ayman W, Said Al-Kindi Said Ahmed, Alhashmi Nadia, Alhabshan Fahad, Al Saman Abdulaziz, Tfayli Hala, Arabi Mariam, Khalifeh Simone, Taylor Alan, Alfadhel Majid, Jain Ruchi, Sinha Shruti, Shenbagam Shruti, Ramachandran Revathy, Altunoğlu Umut, Jacob Anju, Thalange Nandu, El Bejjani Mireille, Perrin Arnaud, Shin Jay W, Al-Maawali Almundher, Al-Shidhani Azza, Al-Futaisi Amna, Rabea Fatma, Chekroun Ikram, Almarri Mohamed A, Ohta Tomohiko, Nakanishi Makoto, Alsheikh-Ali Alawi, Ali Fahad R, Bertoli-Avella Aida M, Reversade Bruno, Abou Tayoun Ahmad

机构信息

Genome Institute of Singapore (GIS), Agency for Science, Technology and Research (A(∗)STAR), 60 Biopolis Street, Genome, Singapore 138672, Singapore.

Genome Institute of Singapore (GIS), Agency for Science, Technology and Research (A(∗)STAR), 60 Biopolis Street, Genome, Singapore 138672, Singapore; Department of Biochemistry, National University of Singapore, Singapore 119260, Singapore.

出版信息

Am J Hum Genet. 2025 May 1;112(5):1233-1246. doi: 10.1016/j.ajhg.2025.03.013. Epub 2025 Apr 10.

Abstract

FBXO22 encodes an F-box protein, which acts as a substrate-recognition component of the SKP1-CUL1-F-box (SCF) E3 ubiquitin ligase complex. Despite its known roles in the post-translational ubiquitination and degradation of specific substrates, including histone demethylases, the impact of FBXO22 on human development remains unknown. Here, we characterize a pleiotropic syndrome with prominent prenatal onset growth restriction and notable neurodevelopmental delay across 16 cases from 14 families. Through exome and genome sequencing, we identify four distinct homozygous FBXO22 variants with loss-of-function effects segregating with the disease: three predicted to lead to premature translation termination due to frameshift effects and a single-amino-acid-deletion variant, which, we show, impacts protein stability in vitro. We confirm that affected primary fibroblasts with a frameshift mutation are bereft of endogenous FBXO22 and show increased levels of the known substrate histone H3K9 demethylase KDM4B. Accordingly, we delineate a unique epigenetic signature for this disease in peripheral blood via long-read sequencing. Altogether, we identify and demonstrate that FBXO22 deficiency leads to a pleiotropic syndrome in humans, encompassing growth restriction and neurodevelopmental delay, the pathogenesis of which may be explained by broad chromatin alterations.

摘要

FBXO22编码一种F-box蛋白,它作为SKP1-CUL1-F-box(SCF)E3泛素连接酶复合体的底物识别成分。尽管已知其在包括组蛋白去甲基酶在内的特定底物的翻译后泛素化和降解中发挥作用,但FBXO22对人类发育的影响仍不清楚。在此,我们描述了一种多效性综合征,其特征为产前明显的生长受限以及来自14个家庭的16例患者出现显著的神经发育延迟。通过外显子组和基因组测序,我们鉴定出四个具有功能丧失效应且与疾病共分离的不同纯合FBXO22变异体:三个因移码效应预计导致翻译提前终止,以及一个单氨基酸缺失变异体,我们证明该变异体在体外影响蛋白质稳定性。我们证实,具有移码突变的受累原代成纤维细胞缺乏内源性FBXO22,并显示已知底物组蛋白H3K9去甲基酶KDM4B的水平升高。因此,我们通过长读长测序在外周血中描绘了这种疾病独特的表观遗传特征。总之,我们鉴定并证明FBXO22缺乏会导致人类出现一种多效性综合征,包括生长受限和神经发育延迟,其发病机制可能由广泛的染色质改变来解释。

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