Xianglian Huazhuo Prescription Treats Chronic Atrophic Gastritis by Inhibiting Ferroptosis via Regulating lncRNA NOTCH1/miR-138-5p/SIRT1 Axis
10.13422/j.cnki.syfjx.20261336
- VernacularTitle:香连化浊方调控lncRNA NOTCH1/miR-138-5p/SIRT1抑制铁死亡治疗慢性萎缩性胃炎的作用机制
- Author:
Rui WANG
1
;
Jiayuan XU
1
;
Yican LIN
1
;
Pengli DU
1
;
Ziqi JIN
1
;
Yanru CAI
1
;
Yuxi GUO
2
;
Qian YANG
2
Author Information
1. Hebei University of Chinese Medicine, Shijiazhuang 050200,China
2. The First Affiliated Hospital of Hebei University of Chinese Medicine, Shijiazhuang 050011,China
- Publication Type:Journal Article
- Keywords:
Xianglian Huazhuo prescription;
chronic atrophic gastritis;
ferroptosis;
long non-coding RNA NOTCH1 (lncRNA NOTCH1)/microRNA-138-5p (miR-138-5p)/silent information regulator 1 (SIRT1)
- From:
Chinese Journal of Experimental Traditional Medical Formulae
2026;32(21):39-50
- CountryChina
- Language:Chinese
-
Abstract:
ObjectiveTo construct a competing endogenous RNA (ceRNA) network involving long non-coding RNA NOTCH1 (lncRNA NOTCH1) and investigate whether Xianglian Huazhuo prescription (XLHZ) ameliorates gastric mucosal injury via regulating ferroptosis through the lncRNA NOTCH1/microRNA-138-5p (miR-138-5p)/silent information regulator 1 (SIRT1) axis. MethodsLncRNA sequencing and bioinformatics tools were used to construct the ceRNA network involving lncRNA NOTCH1. In the animal experiments, a chronic atrophic gastritis (CAG) model was induced by N-methyl-N'-nitro-N-nitrosoguanidine (MNNG) in mice. Mice were randomized into normal, model, Morodan (2.0 g·kg-1), and high-, medium-, and low-dose (7.6, 3.8, 1.9 g·kg-1, respectively) XLHZ groups (n=10). Transmission electron microscopy was adopted to assess gastric pathology. Real-time PCR was employed to measure the mRNA levels of lncRNA NOTCH1, miR-138-5p, SIRT1, nuclear factor erythroid 2-related factor 2 (Nrf2), and glutathione peroxidase 4 (GPX4). Western blot was adopted to quantify the protein levels of SIRT1, Nrf2, and GPX4 in the gastric tissue. In the cell experiment, dual-luciferase assay was employed to verify the targeting among lncRNA NOTCH1, miR-138-5p, and SIRT1. MNNG was used to treat GES-1 cells for disease modeling. The effects of NOTCH1 mimics on the expression of lncRNA NOTCH1, miR-138-5p, and SIRT1, as well as the effects of miR-138-5p inhibitor on the expression of miR-138-5p and SIRT1, were observed. The rescue experiment with XLHZ was designed with five groups: GES-1, GES-1+MNNG (Model), Model+XLHZ, Model+NOTCH1 inhibitor+XLHZ, and Model+NOTCH1 inhibitor+miR-138-5p mimics+XLHZ. Real-time PCR and immunofluorescence assay were employed to measure the mRNA levels of lncRNA NOTCH1, miR-138-5p, SIRT1, Nrf2, and GPX4 and the Fe2+ content, respectively, in GES-1 cells. ResultsThe modeled mice showed mitochondrial damage with shrinkage and cristae loss, downregulated mRNA/protein levels of lncRNA NOTCH1, SIRT1, Nrf2, GPX4, and upregulated expression of miR-138-5p (P<0.01). Compared with the model group, drug treatments reduced mitochondrial structural damage and the membrane density decreased, partially recovered the crista structure, downregulated the expression of miR-138-5p, and upregulated the mRNA and protein levels of lncRNA NOTCH1, SIRT1, Nrf2, and GPX4 (P<0.05, P<0.01). In the cell experiments, the dual-luciferase assays confirmed lncRNA NOTCH1 bound to miR-138-5p and miR-138-5p bound to SIRT1, both suppressing luciferase activity (P<0.05, P<0.01). Compared with the blank control group, the model group showed decreased expression of lncRNA NOTCH1, SIRT1, Nrf2, GPX4, increased expression of miR-138-5p, and enhanced Fe2+ fluorescence (P<0.01). NOTCH1 mimics or miR-138-5p inhibitor reversed these changes (P<0.05, P<0.01). Rescue experiments showed that NOTCH1 inhibitor reversed XLHZ-induced miR-138-5p decrease and SIRT1 increase (P<0.01), while miR-138-5p overexpression suppressed SIRT1 expression (P<0.05, P<0.01). The results confirmed that lncRNA NOTCH1 negatively regulated miR-138-5p, which in turn negatively regulated SIRT1. ConclusionXLHZ effectively alleviates gastric mucosal injury and curbs CAG progression by inhibiting ferroptosis through modulation of the lncRNA NOTCH1/miR-138-5p/SIRT1 axis.