Molecular Systems Biology (MOSYS), Department of Functional and Evolutionary Ecology, University of Vienna, Vienna, Austria.
Vienna Doctoral School of Ecology and Evolution, University of Vienna, Vienna, Austria.
Front Immunol. 2023 May 12;14:1117638. doi: 10.3389/fimmu.2023.1117638. eCollection 2023.
Inflammation is thought to be a key cause of many chronic diseases and cancer. However, current therapeutic agents to control inflammation have limited long-term use potential due to various side-effects. This study aimed to examine the preventive effects of norbergenin, a constituent of traditional anti-inflammatory recipes, on LPS-induced proinflammatory signaling in macrophages and elucidate the underlying mechanisms by integrative metabolomics and shotgun label-free quantitative proteomics platforms. Using high-resolution mass spectrometry, we identified and quantified nearly 3000 proteins across all samples in each dataset. To interpret these datasets, we exploited the differentially expressed proteins and conducted statistical analyses. Accordingly, we found that LPS-induced production of NO, IL1β, TNFα, IL6 and iNOS in macrophages was alleviated by norbergenin suppressed activation of TLR2 mediated NFκB, MAPKs and STAT3 signaling pathways. In addition, norbergenin was capable of overcoming LPS-triggered metabolic reprogramming in macrophages and restrained the facilitated glycolysis, promoted OXPHOS, and restored the aberrant metabolites within the TCA cycle. This is linked to its modulation of metabolic enzymes to support its anti-inflammatory activity. Thus, our results uncover that norbergenin regulates inflammatory signaling cascades and metabolic reprogramming in LPS stimulated macrophages to exert its anti-inflammatory potential.
炎症被认为是许多慢性疾病和癌症的主要原因。然而,由于各种副作用,目前用于控制炎症的治疗药物具有有限的长期使用潜力。本研究旨在研究来自传统抗炎食谱的成分——山柰酚对 LPS 诱导的巨噬细胞中促炎信号的预防作用,并通过整合代谢组学和鸟枪法无标记定量蛋白质组学平台阐明其潜在机制。使用高分辨率质谱,我们在每个数据集的所有样本中鉴定和定量了近 3000 种蛋白质。为了解释这些数据集,我们利用差异表达蛋白进行了统计分析。相应地,我们发现山柰酚可以减轻 LPS 诱导的巨噬细胞中 NO、IL1β、TNFα、IL6 和 iNOS 的产生,抑制 TLR2 介导的 NFκB、MAPKs 和 STAT3 信号通路的激活。此外,山柰酚能够克服 LPS 触发的巨噬细胞代谢重编程,并抑制促进糖酵解、促进 OXPHOS 以及恢复 TCA 循环中异常代谢物。这与其调节代谢酶以支持其抗炎活性有关。因此,我们的结果表明,山柰酚调节 LPS 刺激的巨噬细胞中的炎症信号级联和代谢重编程,从而发挥其抗炎潜力。