丹参注射液通过Nrf2通路减轻人脑类器官氧化损伤的机制研究

Research on the mechanism of Danshen injection in reducing oxidative damage in human brain organoid via the Nrf2 pathway

  • 摘要:
    目的  探究丹参注射液(DSI)能否通过调控核因子E2相关因子2(Nrf2)信号通路保护人脑类器官免受氧化应激损伤及其作用机制。
    方法  构建Nrf2质粒,慢病毒包装并转染人诱导多能干细胞(hiPSC)形成稳定细胞系,使用试剂盒构建Nrf2过表达(LV-Nrf2组)与敲低(sh-Nrf2组)脑类器官。实时荧光定量聚合酶链反应验证转染效率,采用过氧化氢(H2O2)诱导建立氧化应激损伤模型,联合或不联合DSI预处理进行干预。采用细胞计数试剂盒-8(CCK-8)检测细胞活力,蛋白质印迹法及免疫荧光染色检测Nrf2、丙二醛(MDA)、白细胞介素(IL)-1β、性别决定区Y盒蛋白2(SOX2)及神经元特异核蛋白(NeuN)的表达水平。提取人脑类器官总RNA进行转录组测序与分析。
    结果  成功构建LV-Nrf2组与sh-Nrf2组脑类器官模型。CCK-8结果确定氧化应激造模采用32 mmol/L H2O2干预条件,LV-Nrf2组Nrf2荧光表达均高于对照组,MDA、IL-1β荧光表达均低于对照组;sh-Nrf2组则呈现Nrf2低表达、MDA及IL-1β高表达的损伤表型(均为P<0.05)。与H2O2组比较,DSI+H2O2组的脑类器官Nrf2信号更强,MDA、IL-1β水平更低,其中LV-Nrf2的保护效应最为显著。H2O2处理可下调Nrf2、SOX2、NeuN蛋白水平,DSI干预可有效逆转上述指标的下调趋势,sh-Nrf2可削弱DSI对SOX2、NeuN的恢复作用,LV-Nrf2则可协同强化DSI的调控效应。
    结论  DSI可通过Nrf2信号通路拮抗人脑类器官氧化应激损伤,维持神经细胞谱系稳态是其核心治疗特性。

     

    Abstract:
    Objective  To investigate whether Danshen injection (DSI) can protect human brain organoids from oxidative stress damage by regulating the Nrf2 signaling pathway and its mechanism.
    Methods  A Nrf2 plasmid was constructed, lentivirus was packaged and transfected into human induced pluripotent stem cell (hiPSC) to form a stable cell line. Brain organoids with Nrf2 overexpression (LV-Nrf2 group) and knockdown (sh-Nrf2 group) were constructed using kit. The transfection efficiency was verified by real-time fluorescence quantitative polymerase chain reaction. An oxidative stress injury model was established by inducing hydrogen peroxide (H2O2). Intervention was performed either in combination or without DSI pre-treatment. Cell viability was detected by Cell Counting Kit-8 (CCK-8), and the expression levels of Nrf2, malondialdehyde (MDA), interleukin (IL)-1β, sex-determining region Y-box protein 2 (SOX2) and neuronal-specific nuclear protein (NeuN) were detected by Western blotting and immunofluorescence staining. Total RNA from human brain organoids was extracted for transcriptome sequencing and analysis.
    Results  LV-Nrf2 group and sh-Nrf2 group brain organoid models were successfully constructed. The CCK-8 results determined that the oxidative stress model was established with 32 mmol/L H2O2 intervention conditions. The fluorescence expression of Nrf2 in LV-Nrf2 group was higher than that in control group, and the fluorescence expressions of MDA and IL-1β were lower than those in control group; sh-Nrf2 group showed a damage phenotype of low Nrf2 expression, high MDA and IL-1β expression (all P < 0.05). Compared with H2O2 group, the Nrf2 signal in DSI + H2O2 group was stronger, and the levels of MDA and IL-1β were lower. Among them, the protective effect of LV-Nrf2 was the most significant. H2O2 treatment could down-regulate the protein levels of Nrf2, SOX2 and NeuN, and DSI intervention could effectively reverse the downward trend of these indicators. Sh-Nrf2 could weaken the recovery effect of DSI on SOX2 and NeuN, while LV-Nrf2 could synergistically enhance the regulatory effect of DSI.
    Conclusions  DSI may antagonize oxidative stress damage in human brain organoids through the Nrf2 signaling pathway, and maintaining the stability of the neural cell lineage is its core therapeutic characteristic.

     

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