A model of human neural networks reveals NPTX2 pathology in ALS and FTLD

IF 50.5 1区 综合性期刊 Q1 MULTIDISCIPLINARY SCIENCES Nature Pub Date : 2024-02-14 DOI:10.1038/s41586-024-07042-7
Marian Hruska-Plochan, Vera I. Wiersma, Katharina M. Betz, Izaskun Mallona, Silvia Ronchi, Zuzanna Maniecka, Eva-Maria Hock, Elena Tantardini, Florent Laferriere, Sonu Sahadevan, Vanessa Hoop, Igor Delvendahl, Manuela Pérez-Berlanga, Beatrice Gatta, Martina Panatta, Alexander van der Bourg, Dasa Bohaciakova, Puneet Sharma, Laura De Vos, Karl Frontzek, Adriano Aguzzi, Tammaryn Lashley, Mark D. Robinson, Theofanis Karayannis, Martin Mueller, Andreas Hierlemann, Magdalini Polymenidou
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Abstract

Human cellular models of neurodegeneration require reproducibility and longevity, which is necessary for simulating age-dependent diseases. Such systems are particularly needed for TDP-43 proteinopathies1, which involve human-specific mechanisms2–5 that cannot be directly studied in animal models. Here, to explore the emergence and consequences of TDP-43 pathologies, we generated induced pluripotent stem cell-derived, colony morphology neural stem cells (iCoMoNSCs) via manual selection of neural precursors6. Single-cell transcriptomics and comparison to independent neural stem cells7 showed that iCoMoNSCs are uniquely homogenous and self-renewing. Differentiated iCoMoNSCs formed a self-organized multicellular system consisting of synaptically connected and electrophysiologically active neurons, which matured into long-lived functional networks (which we designate iNets). Neuronal and glial maturation in iNets was similar to that of cortical organoids8. Overexpression of wild-type TDP-43 in a minority of neurons within iNets led to progressive fragmentation and aggregation of the protein, resulting in a partial loss of function and neurotoxicity. Single-cell transcriptomics revealed a novel set of misregulated RNA targets in TDP-43-overexpressing neurons and in patients with TDP-43 proteinopathies exhibiting a loss of nuclear TDP-43. The strongest misregulated target encoded the synaptic protein NPTX2, the levels of which are controlled by TDP-43 binding on its 3′ untranslated region. When NPTX2 was overexpressed in iNets, it exhibited neurotoxicity, whereas correcting NPTX2 misregulation partially rescued neurons from TDP-43-induced neurodegeneration. Notably, NPTX2 was consistently misaccumulated in neurons from patients with amyotrophic lateral sclerosis and frontotemporal lobar degeneration with TDP-43 pathology. Our work directly links TDP-43 misregulation and NPTX2 accumulation, thereby revealing a TDP-43-dependent pathway of neurotoxicity. A neural stem cell culture system derived from induced pluripotent stem cells forms a network of synaptically connected and electrophysiologically active neurons that were used as a model system to identify a mechanism of TDP-43-induced neurodegeneration.

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人类神经网络模型揭示了 ALS 和 FTLD 中 NPTX2 的病理变化。
神经退行性变的人类细胞模型需要可重复性和长寿性,这对于模拟年龄依赖性疾病是必要的。TDP-43蛋白病1尤其需要这样的系统,因为它涉及人类特异性机制2-5,无法在动物模型中直接研究。在这里,为了探索 TDP-43 病理的出现和后果,我们通过人工选择神经前体6 生成了诱导多能干细胞衍生的集落形态神经干细胞(iCoMoNSCs)。单细胞转录组学和与独立神经干细胞的比较7表明,iCoMoNSCs具有独特的同质性和自我更新能力。分化后的iCoMoNSCs形成了一个由突触连接和电生理活跃的神经元组成的自组织多细胞系统,并成熟为长寿命的功能网络(我们称之为iNets)。iNets 中神经元和神经胶质细胞的成熟与皮层有机体相似8。在 iNets 中的少数神经元中过表达野生型 TDP-43 会导致蛋白质逐渐破碎和聚集,从而导致部分功能丧失和神经毒性。单细胞转录组学发现,在TDP-43过表达神经元和表现出核TDP-43缺失的TDP-43蛋白病患者中,存在一组新的RNA靶标被误调。最强的误调靶标编码突触蛋白 NPTX2,其水平受 TDP-43 在其 3' 非翻译区的结合控制。当 NPTX2 在 iNets 中过表达时,它会表现出神经毒性,而纠正 NPTX2 的误调则能部分地挽救神经元免受 TDP-43 诱导的神经退行性变的影响。值得注意的是,在患有肌萎缩性脊髓侧索硬化症和额颞叶变性并伴有TDP-43病理变化的患者的神经元中,NPTX2始终处于误积累状态。我们的研究将 TDP-43 失调和 NPTX2 积累直接联系起来,从而揭示了一种依赖于 TDP-43 的神经毒性途径。
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来源期刊
Nature
Nature 综合性期刊-综合性期刊
CiteScore
90.00
自引率
1.20%
发文量
3652
审稿时长
3 months
期刊介绍: Nature is a prestigious international journal that publishes peer-reviewed research in various scientific and technological fields. The selection of articles is based on criteria such as originality, importance, interdisciplinary relevance, timeliness, accessibility, elegance, and surprising conclusions. In addition to showcasing significant scientific advances, Nature delivers rapid, authoritative, insightful news, and interpretation of current and upcoming trends impacting science, scientists, and the broader public. The journal serves a dual purpose: firstly, to promptly share noteworthy scientific advances and foster discussions among scientists, and secondly, to ensure the swift dissemination of scientific results globally, emphasizing their significance for knowledge, culture, and daily life.
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