Biochemistry and Molecular Biology Department, Research Division, Dasman Diabetes Institute, Kuwait City 15462, Kuwait.
Faculty of Medicine, University of Helsinki, 00014 Helsinki, Finland.
Nutrients. 2022 Jan 18;14(3):429. doi: 10.3390/nu14030429.
The corticotropin-releasing hormone (CRH) and urocortins (UCNs) have been implicated in energy homeostasis and the cellular stress response. However, the expression of these neuropeptides in children remains unclear. Therefore, we determined the impact of obesity on their expression in 40 children who were normal weight, overweight, and had obesity. Peripheral blood mononuclear cells (PBMCs) and plasma were used to assess the expression of neuropeptides. THP1 cells were treated with 25 mM glucose and 200 µM palmitate, and gene expression was measured by real-time polymerase chain reaction (RT-PCR). Transcript levels of neuropeptides were decreased in PBMCs from children with increased body mass index as indicated by a significant decrease in UCN1, UCN3, and CRH mRNA in overweight and obese children. UCN3 mRNA expression was strongly correlated with UCN1, UCN2, and CRH. Exposure of THP1 cells to palmitate or a combination of high glucose and palmitate for 24 h increased CRH, UCN2, and UCN3 mRNA expression with concomitant increased levels of inflammatory and endoplasmic reticulum stress markers, suggesting a crosstalk between these neuropeptides and the cellular stress response. The differential impairment of the transcript levels of CRH and UCNs in PBMCs from overweight and obese children highlights their involvement in obesity-related metabolic and cellular stress.
促肾上腺皮质激素释放激素(CRH)和孤啡肽(UCNs)被认为与能量平衡和细胞应激反应有关。然而,这些神经肽在儿童中的表达情况尚不清楚。因此,我们测定了肥胖对 40 名体重正常、超重和肥胖儿童外周血单个核细胞(PBMCs)和血浆中神经肽表达的影响。用 25mM 葡萄糖和 200µM 棕榈酸处理 THP1 细胞,并通过实时聚合酶链反应(RT-PCR)测量基因表达。结果表明,随着超重和肥胖儿童 UCN1、UCN3 和 CRH mRNA 显著降低,PBMCs 中神经肽的转录水平降低。UCN3 mRNA 表达与 UCN1、UCN2 和 CRH 强烈相关。THP1 细胞暴露于棕榈酸或高葡萄糖和棕榈酸混合物 24 小时可增加 CRH、UCN2 和 UCN3 mRNA 的表达,同时增加炎症和内质网应激标志物的水平,表明这些神经肽与细胞应激反应之间存在相互作用。超重和肥胖儿童 PBMCs 中 CRH 和 UCNs 转录水平的差异受损,突出了它们在肥胖相关代谢和细胞应激中的作用。