1.Metabolic changes during epithelial-mesenchymal transition in the lungs of silicosis mice
Huifan YANG ; Jianling SHEN ; Ping WANG ; Yiru QIN ; Qianyu WANG ; Na ZHAO
China Occupational Medicine 2026;53(1):1-7
Objective To investigate the alterations in metabolic molecules and pathways during epithelial-mesenchymal transition (EMT) in the lungs of mice induced by silica exposure. Methods A total of 30 specific pathogen-free male C57BL/6 mice were randomly divided into a control group and a silicosis model group. Mice were intratracheally instilled with 40 µL of either 0.9% sodium chloride solution or silica suspension at a mass concentration of 125 g/L. At 7, 14, and 28 days post-exposure, five mice from each group were sacrificed to evaluate lung histopathological changes. The mRNA expression of EMT-related genes was measured by real-time quantitative polymerase chain reaction. Untargeted metabolomics was used to identify metabolites in mouse lung tissues, and differential metabolites (DMs) and metabolic pathways were analyzed. Results Following silica exposure, lung tissues of mice in the silicosis model group showed progressively aggravated pathological changes, including increased inflammatory cell infiltration, thickening of alveolar walls, collagen deposition, and progressive pulmonary fibrosis, with typical silicotic nodules forming by day 28. The Ashcroft scores and the mRNA expression of cadherin (Cdh)2 and vimentin of mice in the silicosis model group increased (all P<0.05), along with decreased Cdh1 mRNA expression compared with the control group at all the three time points (all P<0.05). The Ashcroft scores and the mRNA expression of Cdh2 and vimentin of mice in the silicosis model group increased with the increase of observation time after silica exposure (all P<0.05), while mRNA expression of Cdh1 decreased (all P<0.05). Metabolomics analysis indicated that silica exposure specifically altered the expression of lipids and disrupted multiple metabolic pathways during EMT in lung tissues of silicosis model group mice,with glycerophospholipid metabolism being most obviously affected (P<0.05). Conclusion Silica exposure may induce EMT in mouse lung tissue, resulting in pulmonary fibrosis in a time-dependent manner. The underlying mechanism may be associated with silica-induced disturbances in glycerophospholipid metabolism in mouse lung tissue.
2.Advances in the treatment of liver cirrhosis with portal vein thrombosis
Xiaoke LI ; Xinle YANG ; Tong WANG ; Shuwen XUE ; Xiaolin GUO ; Huifan JI
Journal of Clinical Hepatology 2021;37(7):1690-1693.
Portal vein thrombosis (PVT) is one of the most common complications of liver cirrhosis. Due to coagulation disorder and the risk of bleeding in liver cirrhosis, there are many controversies over the treatment of liver cirrhosis with PVT in clinical practice. Common therapies for PVT include anticoagulant therapy, intervention, and thrombolysis. This article elaborates on the current status of the treatment of liver cirrhosis with PVT, in order to provide help for the development of standard and reasonable clinical treatment strategies.

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