Oligomeric proanthocyanidin ameliorates sepsis-associated renal tubular injury: involvement of oxidative stress, inflammation, PI3K/AKT and NFκB signaling pathways.

IF 1.6 4区 医学 Q3 PHARMACOLOGY & PHARMACY Korean Journal of Physiology & Pharmacology Pub Date : 2024-11-14 DOI:10.4196/kjpp.24.121
Enhui Cui, Qijing Wu, Haiyan Zhu, Weiqian Tian
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Abstract

Sepsis is a potentially fatal infectious disease that easily causes shock and numerous organ failures. The kidney is one of the most susceptible to injury. Early intervention and renal protection significantly minimize patient mortality. Oligomeric proanthocyanidin (OPC), a naturally occurring plant compound, has a high potential for renal protection. This study was aimed at exploring the potential renoprotective role of OPC in sepsis-related renal tubular injury. C57/B6 mice were intraperitoneally injected with lipopolysaccharide (LPS) to simulate sepsis-related acute kidney injury in vivo. Renal function and pathology were assessed. RNA sequencing examined OPC mechanisms against LPS-induced renal injury. Oxidative stress indicators and inflammatory cytokines in blood serum and renal tissues were evaluated. In vitro, MTT assays assess cell viability. Apoptosis cells were detected using Hoechst 33342 and propidium iodide staining. Western blot assessed PI3K/AKT and NFκB signaling pathway proteins. OPC reduced LPS-induced renal tubular injury, improved renal functions and pathological changes, restored glutathione content, superoxide dismutase activity, and catalase activity, inhibited malondialdehyde overproduction, and suppressed LPS-induced overproduction of pro-inflammatory cytokines and the decline of anti-inflammatory cytokines. OPC attenuated LPS-induced cell morphological injury, reduced cell viability loss, and recovered the changes in proteins involved in PI3K/AKT and NFκB signaling pathways in MTEC cells. OPC protects against LPSinduced renal tubular injury by counteracting oxidative stress, inhibiting inflammatory responses, activating the PI3K/AKT signaling pathway, and inhibiting the NFκB signaling pathway. It may provide a viable solution to lessen renal injury in patients with sepsis.

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低聚原花青素可改善败血症相关的肾小管损伤:氧化应激、炎症、PI3K/AKT 和 NFκB 信号通路的参与。
败血症是一种潜在的致命传染病,很容易导致休克和多种器官衰竭。肾脏是最容易受伤的器官之一。早期干预和肾脏保护可大大降低患者的死亡率。低聚原花青素(OPC)是一种天然植物化合物,具有很高的肾脏保护潜力。本研究旨在探索 OPC 在脓毒症相关肾小管损伤中的潜在肾保护作用。给 C57/B6 小鼠腹腔注射脂多糖(LPS),在体内模拟败血症相关的急性肾损伤。对肾功能和病理进行评估。RNA 测序研究了 OPC 抵御 LPS 引起的肾损伤的机制。评估了血清和肾组织中的氧化应激指标和炎症细胞因子。在体外,MTT 检测法评估细胞活力。使用 Hoechst 33342 和碘化丙啶染色检测细胞凋亡。Western 印迹法评估 PI3K/AKT 和 NFκB 信号通路蛋白。OPC减轻了LPS诱导的肾小管损伤,改善了肾功能和病理变化,恢复了谷胱甘肽含量、超氧化物歧化酶活性和过氧化氢酶活性,抑制了丙二醛的过量产生,并抑制了LPS诱导的促炎细胞因子的过量产生和抗炎细胞因子的减少。OPC 减轻了 LPS 诱导的细胞形态损伤,降低了细胞活力损失,并恢复了 MTEC 细胞中参与 PI3K/AKT 和 NFκB 信号通路的蛋白质的变化。OPC通过对抗氧化应激、抑制炎症反应、激活PI3K/AKT信号通路和抑制NFκB信号通路,防止LPS诱导的肾小管损伤。它可能为减轻败血症患者的肾损伤提供一种可行的解决方案。
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来源期刊
Korean Journal of Physiology & Pharmacology
Korean Journal of Physiology & Pharmacology PHARMACOLOGY & PHARMACY-PHYSIOLOGY
CiteScore
3.20
自引率
5.00%
发文量
53
审稿时长
6-12 weeks
期刊介绍: The Korean Journal of Physiology & Pharmacology (Korean J. Physiol. Pharmacol., KJPP) is the official journal of both the Korean Physiological Society (KPS) and the Korean Society of Pharmacology (KSP). The journal launched in 1997 and is published bi-monthly in English. KJPP publishes original, peer-reviewed, scientific research-based articles that report successful advances in physiology and pharmacology. KJPP welcomes the submission of all original research articles in the field of physiology and pharmacology, especially the new and innovative findings. The scope of researches includes the action mechanism, pharmacological effect, utilization, and interaction of chemicals with biological system as well as the development of new drug targets. Theoretical articles that use computational models for further understanding of the physiological or pharmacological processes are also welcomed. Investigative translational research articles on human disease with an emphasis on physiology or pharmacology are also invited. KJPP does not publish work on the actions of crude biological extracts of either unknown chemical composition (e.g. unpurified and unvalidated) or unknown concentration. Reviews are normally commissioned, but consideration will be given to unsolicited contributions. All papers accepted for publication in KJPP will appear simultaneously in the printed Journal and online.
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