Department of Anatomy, Shanxi Medical University, Taiyuan, 030001, People's Republic of China.
School of Basic Medical Sciences, Shanxi Medical University, Taiyuan, 030001, People's Republic of China.
Stem Cell Res Ther. 2023 Sep 7;14(1):239. doi: 10.1186/s13287-023-03463-9.
Lipodystrophy-associated metabolic disorders caused by Seipin deficiency lead to not only severe lipodystrophy but also neurological disorders. However, the underlying mechanism of Seipin deficiency-induced neuropathy is not well elucidated, and the possible restorative strategy needs to be explored.
In the present study, we used Seipin knockout (KO) mice, combined with transcriptome analysis, mass spectrometry imaging, neurobehavior test, and cellular and molecular assay to investigate the systemic lipid metabolic abnormalities in lipodystrophic mice model and their effects on adult neurogenesis in the subventricular zone (SVZ) and olfactory function. After subcutaneous adipose tissue (AT) transplantation, metabolic and neurological function was measured in Seipin KO mice to clarify whether restoring lipid metabolic homeostasis would improve neurobehavior.
It was found that Seipin KO mice presented the ectopic accumulation of lipids in the lateral ventricle, accompanied by decreased neurogenesis in adult SVZ, diminished new neuron formation in the olfactory bulb, and impaired olfactory-related memory. Transcriptome analysis showed that the differentially expressed genes (DEGs) in SVZ of adult Seipin KO mice were significantly enriched in lipid metabolism. Mass spectrometry imaging showed that the levels of glycerophospholipid and diglyceride (DG) were significantly increased. Furthermore, we found that AT transplantation rescued the abnormality of peripheral metabolism in Seipin KO mice and ameliorated the ectopic lipid accumulation, concomitant with restoration of the SVZ neurogenesis and olfactory function. Mechanistically, PKCα expression was up-regulated in SVZ tissues of Seipin KO mice, which may be a potential mediator between lipid dysregulation and neurological disorder. DG analogue (Dic8) can up-regulate PKCα and inhibit the proliferation and differentiation of neural stem cells (NSCs) in vitro, while PKCα inhibitor can block this effect.
This study demonstrates that Seipin deficiency can lead to systemic lipid disorder with concomitant SVZ neurogenesis and impaired olfactory memory. However, AT restores lipid homeostasis and neurogenesis. PKCα is a key mediator mediating Seipin KO-induced abnormal lipid metabolism and impaired neurogenesis in the SVZ, and inhibition of PKCα can restore the impaired neurogenesis. This work reveals the underlying mechanism of Seipin deficiency-induced neurological dysfunction and provides new ideas for the treatment of neurological dysfunction caused by metabolic disorders.
由 Seipin 缺乏引起的脂肪营养不良相关代谢紊乱不仅导致严重的脂肪营养不良,还导致神经紊乱。然而,Seipin 缺乏诱导的神经病的潜在机制尚不清楚,需要探索可能的修复策略。
在本研究中,我们使用 Seipin 敲除 (KO) 小鼠,结合转录组分析、质谱成像、神经行为测试以及细胞和分子测定,研究脂肪营养不良小鼠模型中全身脂质代谢异常及其对侧脑室下区 (SVZ) 成年神经发生和嗅觉功能的影响。在皮下脂肪组织 (AT) 移植后,测量 Seipin KO 小鼠的代谢和神经功能,以明确恢复脂质代谢稳态是否会改善神经行为。
发现 Seipin KO 小鼠的侧脑室中有脂质的异位积累,伴随着成年 SVZ 中的神经发生减少,嗅球中的新神经元形成减少,以及嗅觉相关记忆受损。转录组分析显示,成年 Seipin KO 小鼠 SVZ 中的差异表达基因 (DEGs) 显著富集在脂质代谢中。质谱成像显示甘油磷脂和二酰基甘油 (DG) 的水平显著增加。此外,我们发现 AT 移植可挽救 Seipin KO 小鼠外周代谢异常,并改善异位脂质积累,同时恢复 SVZ 神经发生和嗅觉功能。机制上,Seipin KO 小鼠 SVZ 组织中 PKCα 的表达上调,这可能是脂质失调和神经紊乱之间的潜在介质。DG 类似物 (Dic8) 可上调 PKCα,并在体外抑制神经干细胞 (NSC) 的增殖和分化,而 PKCα 抑制剂可阻断此作用。
本研究表明,Seipin 缺乏可导致全身脂质紊乱,同时伴有 SVZ 神经发生和嗅觉记忆受损。然而,AT 可恢复脂质稳态和神经发生。PKCα 是介导 Seipin KO 诱导的 SVZ 异常脂质代谢和神经发生受损的关键介质,抑制 PKCα 可恢复受损的神经发生。这项工作揭示了 Seipin 缺乏诱导的神经功能障碍的潜在机制,并为治疗代谢紊乱引起的神经功能障碍提供了新的思路。