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在细丝蛋白缺失时,具有氧化代谢上调的新皮层神经元持续生成。

Sustained generation of neurons destined for neocortex with oxidative metabolic upregulation upon filamin abrogation.

作者信息

Kopsidas Caroline A, Lowe Clara C, McDaniel Dennis P, Zhou Xiaoming, Feng Yuanyi

机构信息

Department of Biochemistry and Molecular Biology, Uniformed Services University, 4301 Jones Bridge Road, Bethesda, MD 20814, USA.

Biomedical Instrumentation Center, Uniformed Services University, 4301 Jones Bridge Road, Bethesda, MD 20814, USA.

出版信息

iScience. 2024 Jun 7;27(7):110199. doi: 10.1016/j.isci.2024.110199. eCollection 2024 Jul 19.

Abstract

Neurons in the neocortex are generated during embryonic development. While the adult ventricular-subventricular zone (V-SVZ) contains cells with neural stem/progenitors' characteristics, it remains unclear whether it has the capacity of producing neocortical neurons. Here, we show that generating neurons with transcriptomic resemblance to upper layer neocortical neurons continues in the V-SVZ of mouse models of a human condition known as periventricular heterotopia by abrogating Flna and Flnb. We found such surplus neurogenesis was associated with V-SVZ's upregulation of oxidative phosphorylation, mitochondrial biogenesis, and vascular abundance. Additionally, spatial transcriptomics analyses showed V-SVZ's neurogenic activation was coupled with transcriptional enrichment of genes in diverse pathways for energy metabolism, angiogenesis, cell signaling, synaptic transmission, and turnovers of nucleic acids and proteins in upper cortical layers. These findings support the potential of generating neocortical neurons in adulthood through boosting brain-wide vascular circulation, aerobic adenosine triphosphate synthesis, metabolic turnover, and neuronal activity.

摘要

新皮层中的神经元在胚胎发育期间产生。虽然成人心室下室管膜区(V-SVZ)含有具有神经干细胞/祖细胞特征的细胞,但目前尚不清楚它是否具有产生新皮层神经元的能力。在这里,我们表明,通过敲除Flna和Flnb,在一种称为室周异位的人类疾病小鼠模型的V-SVZ中,持续产生与上层新皮层神经元具有转录组相似性的神经元。我们发现这种过剩的神经发生与V-SVZ中氧化磷酸化、线粒体生物发生和血管丰度的上调有关。此外,空间转录组学分析表明,V-SVZ的神经源性激活与上层皮层中能量代谢、血管生成、细胞信号传导、突触传递以及核酸和蛋白质周转等多种途径中基因的转录富集相关。这些发现支持了通过促进全脑血液循环、有氧三磷酸腺苷合成、代谢周转和神经元活动在成年期产生新皮层神经元的潜力。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/613b/11233971/64a61dd3e363/fx1.jpg

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