Proteasomal activation ameliorates neuronal phenotypes linked to FBXO11-deficiency.

IF 3.6 Q2 GENETICS & HEREDITY HGG Advances Pub Date : 2025-04-10 Epub Date: 2025-03-20 DOI:10.1016/j.xhgg.2025.100425
Anne Gregor, Laila Distel, Arif B Ekici, Philipp Kirchner, Steffen Uebe, Mandy Krumbiegel, Soeren Turan, Beate Winner, Christiane Zweier
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Abstract

Haploinsufficiency of FBXO11, encoding a ubiquitin ligase complex subunit, is associated with a variable neurodevelopmental disorder. So far, the underlying nervous system-related pathomechanisms are poorly understood, and specific therapies are lacking. Using a combined approach, we established an FBXO11-deficient human stem cell-based neuronal model using CRISPR-Cas9 and a Drosophila model using tissue-specific knockdown techniques. We performed transcriptomic analyses on iPSC-derived neurons and molecular phenotyping in both models. RNA sequencing revealed disrupted transcriptional networks related to processes important for neuronal development, such as differentiation, migration, and cell signaling. Consistently, we found that loss of FBXO11 leads to neuronal phenotypes such as impaired neuronal migration and abnormal proliferation/differentiation balance in human cultured neurons and impaired dendritic development and behavior in Drosophila. Interestingly, application of three different proteasome-activating substances could alleviate FBXO11-deficiency-associated phenotypes in both human neurons and flies. One of these substances is the long-approved drug Verapamil, opening the possibility of drug repurposing in the future. Our study shows the importance of FBXO11 for neurodevelopment and highlights the reversibility of related phenotypes, opening an avenue for potential development of therapeutic approaches through drug repurposing.

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蛋白酶体激活可改善与fbxo11缺乏相关的神经元表型。
编码泛素连接酶复合物亚基的FBXO11单倍体缺陷与可变神经发育障碍有关。到目前为止,潜在的神经系统相关的病理机制尚不清楚,缺乏具体的治疗方法。采用联合方法,我们利用CRISPR/CAS9建立了fbxo11缺陷的人类干细胞神经元模型,并利用组织特异性敲低技术建立了果蝇模型。我们对ipsc衍生的神经元进行转录组学分析,并在两种模型中进行分子表型分析。rna测序揭示了与神经元发育过程相关的转录网络中断,如分化、迁移和细胞信号传导。我们一致发现,FBXO11的缺失会导致神经元表型,如人类培养神经元的神经元迁移和异常增殖/分化平衡受损,以及果蝇树突发育和行为受损。有趣的是,应用三种不同的蛋白酶体激活物质可以减轻人类神经元和果蝇中fbxo11缺陷相关的表型。其中一种物质是长期被批准的药物维拉帕米,这为未来药物再利用开辟了可能性。我们的研究显示了FBXO11对神经发育的重要性,并强调了相关表型的可逆性,为通过药物再利用开发潜在的治疗方法开辟了一条途径。
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来源期刊
HGG Advances
HGG Advances Biochemistry, Genetics and Molecular Biology-Molecular Medicine
CiteScore
4.30
自引率
4.50%
发文量
69
审稿时长
14 weeks
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