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紫草酸B4通过S100A9/MAPK/NF-κB信号通路改善三硝基苯磺酸诱导的结肠炎。

Anemoside B4 ameliorates TNBS-induced colitis through S100A9/MAPK/NF-κB signaling pathway.

作者信息

Zhang Yong, Zha Zhengxia, Shen Wenhua, Li Dan, Kang Naixin, Chen Zhong, Liu Yanli, Xu Guoqiang, Xu Qiongming

机构信息

College of Pharmaceutical Sciences, Soochow University, Suzhou, 215123, Jiangsu, China.

Jiangsu Key Laboratory of Neuropsychiatric Diseases and Jiangsu Key Laboratory of Preventive and Translational Medicine for Geriatric Diseases, Soochow University, Suzhou, 215123, Jiangsu, China.

出版信息

Chin Med. 2021 Jan 18;16(1):11. doi: 10.1186/s13020-020-00410-1.

Abstract

BACKGROUND

Despite the increased morbidity of ulcerative colitis (UC) in the developing countries, available treatments remain unsatisfactory. Therefore, it is urgent to discover more effective therapeutic strategies. Pulsatilla chinensis was widely used for the treatment of inflamed intestinal diseases including UC for thousands of years in China. Anemoside B4, the most abundant triterpenoid saponin isolated from P. chinensis, exerts anti-inflammatory and antioxidant effects and may be the most active compounds, which is responsible for the therapeutic effects. However, the mechanism how anemoside B4 executes its biological functions is still elusive.

METHODS

Here, we used the 2, 4, 6-trinitrobenzene sulfonic acid (TNBS)-induced colitis rat model to evaluate the therapeutic effect of anemoside B4. Blood samples of colitis rats were collected for hematology analysis. The inflammation-associated factors were investigated by enzyme-linked immunosorbent assay (ELISA). Cell proliferation and apoptosis was determined with EdU cell proliferation assay and TUNEL assay. The proteins regulated by anemoside B4 were identified by label-free quantitative proteomics. The significantly down-regulated proteins were verified by Western blotting analysis. mRNA expression was analyzed by quantitative real-time RT-PCR.

RESULTS

The results showed that anemoside B4 ameliorated TNBS-induced colitis symptoms, including tissue damage, inflammatory cell infiltration, and pro-inflammatory cytokine production, apoptosis and slowed proliferation in colon. Quantitative proteomic analyses discovered that 56 proteins were significantly altered by anemoside B4 in the TNBS-induced rats. These proteins mainly clustered in tricarboxylic acid (TCA) cycle and respiratory electron transport chain. Among the altered proteins, S100A9 is one of the most significantly down-regulated proteins and associated with NF-κB and MAPK signaling pathways in the pathogenesis of UC. Further experiments revealed that anemoside B4 suppressed the expression of S100A9 and its downstream genes including TLR4 and NF-κB in colon. In vitro, anemoside B4 could inhibit the NF-κB signaling pathway induced by recombinant S100A9 protein in human intestinal epithelial Caco-2 cells. Moreover, anemoside B4 inhibits neutrophils recruitment and activation in colon induced by TNBS.

CONCLUSIONS

Our results demonstrate that anemoside B4 prevents TNBS-induced colitis by inhibiting the NF-κB signaling pathway through deactivating S100A9, suggesting that anemoside B4 is a promising therapeutic candidate for colitis.

摘要

背景

尽管发展中国家溃疡性结肠炎(UC)的发病率有所上升,但现有的治疗方法仍不尽人意。因此,迫切需要发现更有效的治疗策略。白头翁在中国已有数千年的历史,被广泛用于治疗包括UC在内的肠道炎症性疾病。从白头翁中分离出的最丰富的三萜皂苷——白头翁皂苷B4,具有抗炎和抗氧化作用,可能是发挥治疗作用的最具活性的化合物。然而,白头翁皂苷B4发挥其生物学功能的机制仍不清楚。

方法

在此,我们使用2,4,6-三硝基苯磺酸(TNBS)诱导的结肠炎大鼠模型来评估白头翁皂苷B4的治疗效果。收集结肠炎大鼠的血液样本进行血液学分析。通过酶联免疫吸附测定(ELISA)研究炎症相关因子。用EdU细胞增殖测定法和TUNEL测定法测定细胞增殖和凋亡。通过无标记定量蛋白质组学鉴定受白头翁皂苷B4调节的蛋白质。通过蛋白质印迹分析验证显著下调的蛋白质。通过定量实时RT-PCR分析mRNA表达。

结果

结果表明,白头翁皂苷B4改善了TNBS诱导的结肠炎症状,包括组织损伤、炎症细胞浸润、促炎细胞因子产生、结肠细胞凋亡并减缓增殖。定量蛋白质组学分析发现,在TNBS诱导的大鼠中,有56种蛋白质被白头翁皂苷B4显著改变。这些蛋白质主要聚集在三羧酸(TCA)循环和呼吸电子传递链中。在这些改变的蛋白质中,S100A9是下调最显著的蛋白质之一,并且在UC的发病机制中与NF-κB和MAPK信号通路相关。进一步的实验表明,白头翁皂苷B4抑制结肠中S100A9及其下游基因(包括TLR4和NF-κB)的表达。在体外,白头翁皂苷B4可以抑制重组S100A9蛋白在人肠上皮Caco-2细胞中诱导的NF-κB信号通路。此外,白头翁皂苷B4抑制TNBS诱导的结肠中中性粒细胞的募集和激活。

结论

我们的结果表明,白头翁皂苷B4通过失活S100A9抑制NF-κB信号通路,从而预防TNBS诱导的结肠炎,这表明白头翁皂苷B4是一种有前途的结肠炎治疗候选药物。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/907d/7814617/1d743a0f9560/13020_2020_410_Fig1_HTML.jpg

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