Diabète Athérothrombose Thérapies Réunion Océan Indien (DéTROI), INSERM, UMR 1188, Université de La Réunion, 97400 Saint-Denis, France.
Int J Mol Sci. 2022 May 11;23(10):5372. doi: 10.3390/ijms23105372.
Zebrafish has become a popular model to study many physiological and pathophysiological processes in humans. In recent years, it has rapidly emerged in the study of metabolic disorders, namely, obesity and diabetes, as the regulatory mechanisms and metabolic pathways of glucose and lipid homeostasis are highly conserved between fish and mammals. Zebrafish is also widely used in the field of neurosciences to study brain plasticity and regenerative mechanisms due to the high maintenance and activity of neural stem cells during adulthood. Recently, a large body of evidence has established that metabolic disorders can alter brain homeostasis, leading to neuro-inflammation and oxidative stress and causing decreased neurogenesis. To date, these pathological metabolic conditions are also risk factors for the development of cognitive dysfunctions and neurodegenerative diseases. In this review, we first aim to describe the main metabolic models established in zebrafish to demonstrate their similarities with their respective mammalian/human counterparts. Then, in the second part, we report the impact of metabolic disorders (obesity and diabetes) on brain homeostasis with a particular focus on the blood-brain barrier, neuro-inflammation, oxidative stress, cognitive functions and brain plasticity. Finally, we propose interesting signaling pathways and regulatory mechanisms to be explored in order to better understand how metabolic disorders can negatively impact neural stem cell activity.
斑马鱼已成为研究人类许多生理和病理生理过程的一种流行模式。近年来,它在代谢紊乱的研究中迅速兴起,即肥胖和糖尿病的研究,因为鱼类和哺乳动物之间葡萄糖和脂质稳态的调节机制和代谢途径高度保守。由于成年期神经干细胞的高维持和活性,斑马鱼也广泛用于神经科学领域,以研究大脑的可塑性和再生机制。最近,大量证据表明代谢紊乱会改变大脑的稳态,导致神经炎症和氧化应激,从而导致神经发生减少。迄今为止,这些病理代谢条件也是认知功能障碍和神经退行性疾病发展的危险因素。在这篇综述中,我们首先旨在描述在斑马鱼中建立的主要代谢模型,以证明它们与各自的哺乳动物/人类对应物的相似性。然后,在第二部分,我们报告代谢紊乱(肥胖和糖尿病)对大脑稳态的影响,特别关注血脑屏障、神经炎症、氧化应激、认知功能和大脑可塑性。最后,我们提出了一些有趣的信号通路和调节机制,以探索如何更好地理解代谢紊乱如何对神经干细胞活动产生负面影响。