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维生素D3/维生素D受体通过抑制自噬减轻双链RNA病毒诱导的胆管上皮细胞损伤。

Vitamin D3/VDR alleviates double-stranded RNA virus -induced biliary epithelial cell damage by inhibiting autophagy.

作者信息

Liu Na, Zhao Pu, Cao Ping, Hui JunPeng, Pan YongKang, Cheng Jiwen

机构信息

Department of Ultrasound, The Second Affiliated Hospital of Xi'an Jiaotong University, Xi'an, Shaanxi Province, 710004, China.

Department of Neonatology, The Third Affiliated Hospital of Xi'an Jiaotong University, Xi'an, Shaanxi Province, 710068, China.

出版信息

BMC Gastroenterol. 2025 Jan 29;25(1):44. doi: 10.1186/s12876-025-03640-5.

Abstract

BACKGROUND

The increased apoptosis of bile duct epithelial cells (BECs) due to some damage factors is considered the initiating factor in the occurrence and progression of biliary atresia (BA). Vitamin D receptor (VDR) is thought to play a crucial role in maintaining the intrinsic immune balance and integrity of bile duct epithelial cells (BECs). To investigate the role of VDRs in the pathogenesis and progression of BA using in vitro and in vivo models.

MATERIALS AND METHODS

The VDR expression levels in intrahepatic bile duct epithelial cells (IBDECs) in pediatric patients with BA were examined using immunohistochemical analysis. The correlation of the VDR levels with the incidence of refractory cholangitis after Kasai portoenterostomy (KPE) and the autologous liver survival time was analyzed. The levels of genes and proteins involved in related pathways were examined using quantitative real-time polymerase chain reaction and western blotting, respectively. The secretory levels of inflammatory factors were analyzed using enzyme-linked immunosorbent assay. A BA mouse model was established through the intraperitoneal sequential injection of rhesus rotavirus (RRV). The role of VDR in the pathogenesis and progression of BA was examined using in vitro and in vivo models. Retrospective analysis of patients with BA to examine the therapeutic efficacy of VDR activators on BA.

RESULTS

15 pediatric BA patients exhibiting VDR downregulation in IBDECs showed a higher incidence of refractory cholangitis after Kasai portoenterostomy (p = 0.037) and a lower native liver survival time compare to 23 BA patients without VDR downregulation (p = 0.032). 1,25-VD3 inhibited the degree of autophagy induction in HIBECs by poly(I: C) (p < 0.05), mitigated poly(I: C)-induced BEC damage and apoptosis by inhibiting autophagy (p < 0.05). 1,25-VD3 significantly suppressed the poly(I: C)-induced downregulation of SRC (p < 0.05) and ERK1/2 phosphorylation (p < 0.05). 1,25-VD3 exert a protective effect against RRV-induced BEC damage by inhibiting autophagy in BA mouse model. The incidence of cholangitis and the native liver survival time after surgery in the calcitriol-treated group was significantly lower than that in the control group. (p = 0.033, p = 0.035, respectively).

CONCLUSIONS

VDR activator mitigated dsRNA-induced BEC damage and apoptosis by inhibiting autophagy in vitro and in vivo. The 1,25-VD3/VDR/Src axis alleviated poly(I: C)-induced HIBEC damage and apoptosis through the PLA2/PKC/ERK pathway.

摘要

背景

由于某些损伤因素导致的胆管上皮细胞(BECs)凋亡增加被认为是胆道闭锁(BA)发生和进展的起始因素。维生素D受体(VDR)被认为在维持胆管上皮细胞(BECs)的固有免疫平衡和完整性方面起着关键作用。本研究旨在利用体外和体内模型探讨VDR在BA发病机制和进展中的作用。

材料与方法

采用免疫组织化学分析法检测小儿BA患者肝内胆管上皮细胞(IBDECs)中VDR的表达水平。分析VDR水平与Kasai肝门空肠吻合术(KPE)后难治性胆管炎发生率及自体肝存活时间的相关性。分别采用定量实时聚合酶链反应和蛋白质印迹法检测相关通路中基因和蛋白质的水平。采用酶联免疫吸附测定法分析炎症因子的分泌水平。通过腹腔内序贯注射恒河猴轮状病毒(RRV)建立BA小鼠模型。利用体外和体内模型研究VDR在BA发病机制和进展中的作用。回顾性分析BA患者,以检验VDR激活剂对BA的治疗效果。

结果

与23例未出现VDR下调的BA患者相比,15例IBDECs中VDR下调的小儿BA患者在Kasai肝门空肠吻合术后难治性胆管炎的发生率更高(p = 0.037),自体肝存活时间更短(p = 0.032)。1,25-二羟维生素D3抑制聚肌苷酸:聚胞苷酸(poly(I: C))诱导的人肝内胆管上皮细胞(HIBECs)自噬诱导程度(p < 0.05),通过抑制自噬减轻poly(I: C)诱导的BEC损伤和凋亡(p < 0.05)。1,25-二羟维生素D3显著抑制poly(I: C)诱导的Src下调(p < 0.05)和细胞外信号调节激酶1/2(ERK1/2)磷酸化(p < 0.05)。在BA小鼠模型中,1,25-二羟维生素D3通过抑制自噬对RRV诱导的BEC损伤发挥保护作用。骨化三醇治疗组术后胆管炎发生率和自体肝存活时间显著低于对照组(分别为p = 0.033, p = 0.035)。

结论

VDR激活剂在体外和体内通过抑制自噬减轻双链RNA(dsRNA)诱导的BEC损伤和凋亡。1,25-二羟维生素D3/VDR/Src轴通过磷脂酶A2/蛋白激酶C/ERK途径减轻poly(I: C)诱导的HIBEC损伤和凋亡。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/c2a2/11780797/566e93237282/12876_2025_3640_Fig1_HTML.jpg

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