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Mitochondrial Dysfunction Is Linked to Pathogenesis in the P497s UBQLN2 Mouse Model of Als/Ftd

机译:线粒体功能障碍与 ALS/FTD 的 P497s UBQLN2 小鼠模型的发病机制有关

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摘要

Ubiquilin-2 (UBQLN2) mutations cause amyotrophic lateral sclerosis (ALS) with frontotemporal dementia (FTD), but the mechanisms that drive disease pathogenesis remain unclear. Neurons have especially high energy requirements and consume copious amounts of ATP to support synaptic transmission and other complex processes. As such, mitochondrial dysfunction has been thought to play a pathogenic role in ALS. Recently, UBQLNs have been implicated in mitochondrial protein quality control whereby their inactivation in cells leads to the accumulation of cytostatic mitochondrial precursors. However, it is unclear what specific role UBQLN2 plays in maintaining mitochondrial proteostasis and how UBQLN2 mutations impact mitochondria physiology. In this thesis, I tested my hypothesis that the ALS-linked UBQLN2 P497S mutation causes mitochondrial dysfunction through loss of UBQLN2 chaperone function and impaired mitochondrial import. Our lab previously generated proteomic profiles of early-stage (8 weeks) hippocampal and spinal cord (SC) tissues isolated from non-transgenic (Non-Tg), wild-type (WT356), and P497S UBQLN2 mutant mice, whereby the mutant animal closely models human ALS/FTD. Gene ontology analysis revealed "mitochondrial proteins" as a major category altered in P497S animals. I immunoblotted SC lysates of Non-Tg, WT356 and P497S UBQLN2 animals for various mitochondrial proteins, and found decreased levels of many mitochondrial proteins, including those involved in oxidative phosphorylation (OXPHOS), network dynamics and import. I discovered through Seahorse respiration assays that mitochondria purified from the SC of P497S mice have age-dependent respiration deficits unlike those of age-matched Non-Tg and WT356 animals. Electron microscopy of spinal motor neurons in the P497S animals revealed distortions to mitochondria cristae. I demonstrated that mitochondrial alterations found in P497S mutant animals are recapitulated in UBQLN2 knock-out cells, suggesting loss of UBQLN2 function may underlie the mutation's effects. Additionally, inactivation of UBQLN2 compromised proper targeting and processing of the mitochondrial import factor, TIMM44, which subsequently could be rescued by reexpression of WT UBQLN2, but not by mutant UBQLN2 proteins. ALS/FTD UBQLN2 mutants bind weaker to TIMM44 compared to WT UBQLN2, providing a possible mechanism for the mitochondrial import defects. Overall, these studies highlight a potential key role of UBQLN2 in maintaining mitochondrial health, and how its function is impaired by mutations in UBQLN2.
机译:泛喹蛋白 2 (UBQLN2) 突变导致肌萎缩侧索硬化症 (ALS) 伴额颞叶痴呆 (FTD),但驱动疾病发病机制的机制仍不清楚。神经元对能量的需求特别高,需要消耗大量的 ATP 来支持突触传递和其他复杂过程。因此,线粒体功能障碍被认为在 ALS 中起致病作用。最近,UBQLNs 与线粒体蛋白质量控制有关,因此它们在细胞中的失活导致细胞抑制线粒体前体的积累。然而,目前尚不清楚 UBQLN2 在维持线粒体蛋白质稳态中起什么具体作用,以及 UBQLN2 突变如何影响线粒体生理学。在这篇论文中,我检验了我的假设,即 ALS 相关的 UBQLN2 P497S 突变通过失去 UBQLN2 伴侣功能和受损的线粒体输入导致线粒体功能障碍。我们的实验室之前生成了从非转基因 (Non-Tg)、野生型 (WT356) 和 P497S UBQLN2 突变小鼠中分离的早期(8 周)海马和脊髓 (SC) 组织的蛋白质组学谱,其中突变动物与人类 ALS/FTD 密切相关。基因本体分析显示“线粒体蛋白”是 P497S 动物中改变的主要类别。我对各种线粒体蛋白的非 Tg、WT356 和 P497S UBQLN2 动物的 SC 裂解物进行免疫印迹,发现许多线粒体蛋白的水平降低,包括那些参与氧化磷酸化 (OXPHOS)、网络动力学和输入的蛋白。我通过 Seahorse 呼吸测定发现,从 P497S 小鼠的 SC 中纯化的线粒体具有年龄依赖性呼吸缺陷,这与年龄匹配的非 Tg 和 WT356 动物不同。P497S 动物脊髓运动神经元的电子显微镜显示线粒体嵴扭曲。我证明在 P497S 突变动物中发现的线粒体改变在 UBQLN2 敲除细胞中被概括,这表明 UBQLN2 功能的丧失可能是突变影响的基础。此外,UBQLN2 的失活损害了线粒体输入因子 TIMM44 的正确靶向和加工,随后可以通过 WT UBQLN2 的重表达来挽救,但不能通过突变的 UBQLN2 蛋白来挽救。与 WT UBQLN2 相比,ALS/FTD UBQLN2 突变体与 TIMM44 的结合较弱,为线粒体输入缺陷提供了一种可能的机制。总体而言,这些研究强调了 UBQLN2 在维持线粒体健康方面的潜在关键作用,以及 UBQLN2 突变如何损害其功能。

著录项

  • 作者

    Lin, Brian.;

  • 作者单位

    University of Maryland, Baltimore.;

  • 授予单位 University of Maryland, Baltimore.;
  • 学科 Neurosciences.;Cellular biology.;Neurodegeneration.;Amyotrophic lateral sclerosis.;Kinases.
  • 学位
  • 年度 2021
  • 页码 158
  • 总页数 158
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    Neurosciences.; Cellular biology.; Neurodegeneration.; Amyotrophic lateral sclerosis.; Kinases.;

    机译:神经科学。;细胞生物学。;神经退行性变。;肌萎缩侧索硬化症。;激酶。;
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