Multi-omics-based phenotyping of AFG3L2-mutant lymphoblasts determines key factors of a pathophysiological interplay between mitochondrial vulnerability and neurodegeneration in spastic ataxia type 5.

IF 3.8 3区 医学 Q2 NEUROSCIENCES Frontiers in Molecular Neuroscience Pub Date : 2025-02-20 eCollection Date: 2025-01-01 DOI:10.3389/fnmol.2025.1548255
Menekse Oeztuerk, Diran Herebian, Kale Dipali, Andreas Hentschel, Nina Rademacher, Florian Kraft, Rita Horvath, Felix Distelmaier, Sven G Meuth, Tobias Ruck, Ulrike Schara-Schmidt, Andreas Roos
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Abstract

Mitochondrial integrity is fundamental to cellular function, upheld by a network of proteases that regulate proteostasis and mitochondrial dynamics. Among these proteases, AFG3L2 is critical due to its roles in maintaining mitochondrial homeostasis, regulating mitochondrial protein quality, and facilitating mitochondrial biogenesis. Mutations in AFG3L2 are implicated in a spectrum of diseases, including spinocerebellar ataxia type 28 (SCA28) and spastic ataxia 5 (SPAX5), as well as other systemic conditions. This study employs a multi-omics approach to investigate the biochemical impact of AFG3L2 mutations in immortalized lymphoblastoid cell lines derived from a patient with biallelic variants leading to spastic ataxia (SPAX5). Our proteomic analysis revealed AFG3L2 impairment, with significant dysregulation of proteins critical for mitochondrial function, cytoskeletal integrity, and cellular metabolism. Specifically, disruptions were observed in mitochondrial dynamics and calcium homeostasis, alongside downregulation of key proteins like COX11, a copper chaperone for complex IV assembly, and NFU1, an iron-sulfur cluster protein linked to spastic paraparesis and infection-related worsening. Lipidomic analysis highlighted substantial alterations in lipid composition, with significant decreases in sphingomyelins, phosphatidylethanolamine, and phosphatidylcholine, reflecting disruptions in lipid metabolism and membrane integrity. Metabolomic profiling did not reveal any significant findings. Our comprehensive investigation into loss of functional AFG3L2 elucidates a pathophysiology extending beyond mitochondrial proteostasis, implicating a wide array of cellular processes. The findings reveal substantial cellular disturbances at multiple levels, contributing to neurodegeneration through disrupted mitochondrial respiratory chain, calcium homeostasis, cytoskeletal integrity, and altered lipid homeostasis. This study underscores the complexity of SPAX5 pathophysiology and the importance of multi-omics approaches in developing effective strategies to address the impact of loss of functional AFG3L2. Our data also highlight the value of immortalized lymphoblastoid cells as a tool for pre-clinical testing and research, offering a detailed biochemical fingerprint that enhances our understanding of SPAX5 and identifies potential areas for further investigation.

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基于多组学的afg3l2突变淋巴细胞表型确定了痉挛性共济失调5型患者线粒体易感性和神经退行性变之间病理生理相互作用的关键因素。
线粒体完整性是细胞功能的基础,由蛋白酶网络维持,蛋白酶网络调节蛋白质稳态和线粒体动力学。在这些蛋白酶中,AFG3L2在维持线粒体稳态、调节线粒体蛋白质量和促进线粒体生物发生中起着至关重要的作用。AFG3L2突变与一系列疾病有关,包括脊髓小脑共济失调28型(SCA28)和痉挛性共济失调5型(SPAX5),以及其他全身性疾病。本研究采用多组学方法研究了来自双等位基因变异导致痉挛性共济失调(SPAX5)患者的永生化淋巴母细胞样细胞系中AFG3L2突变的生化影响。我们的蛋白质组学分析显示,AFG3L2受损,并伴有对线粒体功能、细胞骨架完整性和细胞代谢至关重要的蛋白质的显著失调。具体而言,线粒体动力学和钙稳态被破坏,同时关键蛋白如COX11(复合体IV组装的铜伴侣)和NFU1(铁硫簇蛋白)下调,NFU1与痉挛性截瘫和感染相关恶化有关。脂质组学分析强调了脂质组成的实质性改变,鞘磷脂、磷脂酰乙醇胺和磷脂酰胆碱显著减少,反映了脂质代谢和膜完整性的破坏。代谢组学分析没有显示任何显著的发现。我们对功能性AFG3L2缺失的全面研究阐明了线粒体蛋白质停滞之外的病理生理学,涉及广泛的细胞过程。研究结果揭示了多重水平的细胞紊乱,通过线粒体呼吸链、钙稳态、细胞骨架完整性和脂质稳态改变导致神经退行性变。这项研究强调了SPAX5病理生理的复杂性,以及多组学方法在制定有效策略以解决功能性AFG3L2缺失的影响方面的重要性。我们的数据还强调了永生化淋巴母细胞作为临床前测试和研究工具的价值,提供了详细的生化指纹,增强了我们对SPAX5的理解,并确定了进一步研究的潜在领域。
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来源期刊
CiteScore
5.70
自引率
2.10%
发文量
669
审稿时长
14 weeks
期刊介绍: Frontiers in Molecular Neuroscience is a first-tier electronic journal devoted to identifying key molecules, as well as their functions and interactions, that underlie the structure, design and function of the brain across all levels. The scope of our journal encompasses synaptic and cellular proteins, coding and non-coding RNA, and molecular mechanisms regulating cellular and dendritic RNA translation. In recent years, a plethora of new cellular and synaptic players have been identified from reduced systems, such as neuronal cultures, but the relevance of these molecules in terms of cellular and synaptic function and plasticity in the living brain and its circuits has not been validated. The effects of spine growth and density observed using gene products identified from in vitro work are frequently not reproduced in vivo. Our journal is particularly interested in studies on genetically engineered model organisms (C. elegans, Drosophila, mouse), in which alterations in key molecules underlying cellular and synaptic function and plasticity produce defined anatomical, physiological and behavioral changes. In the mouse, genetic alterations limited to particular neural circuits (olfactory bulb, motor cortex, cortical layers, hippocampal subfields, cerebellum), preferably regulated in time and on demand, are of special interest, as they sidestep potential compensatory developmental effects.
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