Xenopus laevis neural stem progenitor cells exhibit a transient metabolic shift toward glycolysis during spinal cord regeneration.

IF 4.6 2区 生物学 Q2 CELL BIOLOGY Frontiers in Cell and Developmental Biology Pub Date : 2025-01-29 eCollection Date: 2025-01-01 DOI:10.3389/fcell.2025.1529093
Paula G Slater, Miguel E Domínguez-Romero, Guillermo Campos, Vania Aravena, Javier Cavieres-Lepe, Verónica Eisner
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Abstract

Spinal cord injury (SCI) results in severe disruption of communication between the brain and body, causing motor, sensory, and autonomic dysfunctions. While SCI in mammals leads to permanent impairment due to limited regenerative capacity, certain non-mammalian species, such as Xenopus laevis larval stages, exhibit remarkable regenerative abilities. During Xenopus laevis spinal cord regeneration, neural stem precursor cells (NSPCs) surrounding the central canal rapidly proliferate in response to SCI, compensating for cellular loss, restoring canal continuity, and generating new neurons to reestablish lost connections. It has been described that mitochondria and cellular metabolism play essential roles in stem cell proliferation, self-renewal, and differentiation. However, the mitochondrial and cellular metabolic response during spinal cord regeneration remains unexplored. This study uses electron and confocal microscopy to investigate the NSPCs mitochondrial response in Xenopus laevis following SCI. We observed that mitochondria exhibit a rapid and transient response after SCI, characterized by a disruption of the mitochondrial localization, a decrease in mitochondrial number per cell section, and an increase in mitochondrial area and circularity. Furthermore, mitochondria adopted a swollen phenotype, which did not impair mitochondrial function or cellular energy balance. This morphological shift was accompanied by a transient decrease in the mitochondrial membrane potential and a metabolic switch favoring glycolysis. Therefore, these findings demonstrate that a transient metabolic shift toward glycolysis occurs during spinal cord regeneration.

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非洲爪蟾神经干祖细胞在脊髓再生过程中表现出向糖酵解的短暂代谢转变。
脊髓损伤(SCI)导致大脑和身体之间的通信严重中断,引起运动,感觉和自主神经功能障碍。哺乳动物的脊髓损伤由于再生能力有限而导致永久性损伤,而某些非哺乳动物物种,如非洲爪蟾幼虫期,表现出显著的再生能力。在非洲爪蟾(Xenopus laevis)脊髓再生过程中,中枢椎管周围的神经干细胞(NSPCs)响应脊髓损伤迅速增殖,补偿细胞损失,恢复椎管连续性,并产生新的神经元来重建失去的连接。线粒体和细胞代谢在干细胞增殖、自我更新和分化中起着至关重要的作用。然而,脊髓再生过程中的线粒体和细胞代谢反应仍未被探索。本研究利用电子显微镜和共聚焦显微镜研究了非洲爪蟾脊髓损伤后NSPCs线粒体的反应。我们观察到,线粒体在脊髓损伤后表现出快速而短暂的反应,其特征是线粒体定位被破坏,每细胞切片线粒体数量减少,线粒体面积和圆形度增加。此外,线粒体采用肿胀表型,这并不损害线粒体功能或细胞能量平衡。这种形态转变伴随着线粒体膜电位的短暂下降和有利于糖酵解的代谢开关。因此,这些发现表明,在脊髓再生过程中发生了糖酵解的短暂代谢转变。
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来源期刊
Frontiers in Cell and Developmental Biology
Frontiers in Cell and Developmental Biology Biochemistry, Genetics and Molecular Biology-Cell Biology
CiteScore
9.70
自引率
3.60%
发文量
2531
审稿时长
12 weeks
期刊介绍: Frontiers in Cell and Developmental Biology is a broad-scope, interdisciplinary open-access journal, focusing on the fundamental processes of life, led by Prof Amanda Fisher and supported by a geographically diverse, high-quality editorial board. The journal welcomes submissions on a wide spectrum of cell and developmental biology, covering intracellular and extracellular dynamics, with sections focusing on signaling, adhesion, migration, cell death and survival and membrane trafficking. Additionally, the journal offers sections dedicated to the cutting edge of fundamental and translational research in molecular medicine and stem cell biology. With a collaborative, rigorous and transparent peer-review, the journal produces the highest scientific quality in both fundamental and applied research, and advanced article level metrics measure the real-time impact and influence of each publication.
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