1.Study on screening of active components from Desmodium styracifolium( Osb.) Merr. extract against cholestatic liver injury and its mechanism of action
Tao HUANG ; Chao CHEN ; Wenhua WEI ; Liuting WEI ; Bo LI ; Ya GAO ; Houkang CAO
China Pharmacy 2026;37(17):2241-2247
OBJECTIVE To identify the active components of Desmodium styracifolium (Osb.) Merr. extract (DME) against cholestatic liver injury (CLI), and to verify its target and molecular mechanism, so as to provide scientific evidence for the clinical application of D.styracifolium (Osb.) Merr. and the development of new hepatoprotective agents.METHODS High-performance liquid chromatography was applied to establish fingerprints of 19 batches of DME, followed by similarity evaluation and identification of common peaks. An in vitro CLI model was constructed by lithocholic acid (LCA)-induced injury in HepG2 cells to evaluate the in vitro protective effect of DME against CLI. Spearman correlation analysis, grey relational analysis and partial least-squares regression analysis were adopted to investigate the spectrum-effect relationship of DME against CLI and preliminarily screen the core active components. Molecular docking and surface plasmon resonance technology were used to predict and verify the binding capacity between core active components and farnesoid X receptor (FXR). qRT-PCR, Western blot and immunofluorescence staining tests were performed to validate the influences of core active components on the expression of molecules related to FXR/bile salt export pump (BSEP) pathway in CLI model cells.RESULTS A total of 12 common peaks were calibrated in the fingerprints of 19 batches of DME, and the similarity values were all above 0.990. Four common peaks were identified, namely peak 6 (schaftoside), peak 7 (isoorientin), peak 11 (isoschaftoside) and peak 12 (isovitexin). DME at 80 μg/mL exerted the optimal protective effect on CLI-model cells, and the cell viability reached (75.66±4.60)% after 24 h of treatment. Spectrum-effect analysis revealed that schaftoside possessed the strongest correlation with the anti-CLI activity of DME and served as the core active component. Target prediction and validation results showed that the binding energy between schaftoside and FXR was -8.1 kcal/mol, and the equilibrium dissociation constant was 27.3 μmol/L. Mechanistic experiments demonstrated that 100 μmol/L schaftoside significantly elevated the expression levels of FXR and BSEP, and mRNA of their encoded genes Nr1h4 , Abcb11 in CLI-model cells ( P <0.05).CONCLUSIONS Schaftoside may be the core active component of DME against CLI, and its mechanism may be related to the activation of FXR/BSEP pathway.
2.Association between serum non-HDL-C and cardiovascular disease mortality risk
Baocheng DONG ; Longfei MAO ; Haitao WEI ; Shuxia ZHU ; Xiangping TANG ; Liuting XU ; Lixiang CHAI ; Yelu RUAN ; Shunqin HUANG ; Jianbing WANG
Chinese Journal of Preventive Medicine 2025;59(10):1763-1769
To analyze the relationship between serum non-HDL-C levels and cardiovascular disease (CVD) mortality in community populations. A retrospective cohort study was conducted using the Yuecheng District Health Information Platform in Shaoxing City, Zhejiang Province. The study cohort included individuals aged 40 years or older with no prior history of CVD who underwent physical examinations at Yuecheng District healthcare institutions between January and December 2019. A total of 39 038 participants were included, including 19 085 males (48.9%) and 19 953 females (51.1%), with a mean age of (73.64±9.10) years. The mean follow-up duration was 52.3 months. During follow-up, 1 227 CVD death events occurred. The results indicated a significant overall association between non-HDL-C levels and the risk of CVD mortality, including coronary heart disease (CHD) and stroke. Cox models indicated that, using the ideal level of non-HDL-C as the reference, the hazard ratios (HRs) for risk of CVD death in the suitable level, borderline elevated level and elevated level groups were 1.24 (95% CI: 1.08-1.42), 1.57 (95% CI: 1.34-1.85) and 2.31 (95% CI: 1.87-2.86), respectively. The corresponding HRs for CHD death were 1.39 (95% CI: 1.10-1.76), 1.69 (95% CI: 1.28-2.12) and 2.53 (95% CI: 1.76-3.64), respectively. Subgroup analysis revealed significant interaction effects between non-HDL-C and sex, smoking, alcohol consumption, and diabetes (all P interaction<0.05). Sensitivity analyses confirmed that results were consistent with the primary findings regarding the association between non-HDL-C and CVD mortality risk. In conclusion, increasing non-HDL-C levels are associated with higher risks of death from cardiovascular diseases, including stroke and CHD. The risk of CVD death associated with elevated non-HDL-C is greater among males, individuals with a history of diabetes, smokers or drinkers. In the future, attention should be paid to the monitoring of non-HDL-C in community health management, and the intensive and personalized management of blood lipids in high-risk population should be strengthened.
3.Association between serum non-HDL-C and cardiovascular disease mortality risk
Baocheng DONG ; Longfei MAO ; Haitao WEI ; Shuxia ZHU ; Xiangping TANG ; Liuting XU ; Lixiang CHAI ; Yelu RUAN ; Shunqin HUANG ; Jianbing WANG
Chinese Journal of Preventive Medicine 2025;59(10):1763-1769
To analyze the relationship between serum non-HDL-C levels and cardiovascular disease (CVD) mortality in community populations. A retrospective cohort study was conducted using the Yuecheng District Health Information Platform in Shaoxing City, Zhejiang Province. The study cohort included individuals aged 40 years or older with no prior history of CVD who underwent physical examinations at Yuecheng District healthcare institutions between January and December 2019. A total of 39 038 participants were included, including 19 085 males (48.9%) and 19 953 females (51.1%), with a mean age of (73.64±9.10) years. The mean follow-up duration was 52.3 months. During follow-up, 1 227 CVD death events occurred. The results indicated a significant overall association between non-HDL-C levels and the risk of CVD mortality, including coronary heart disease (CHD) and stroke. Cox models indicated that, using the ideal level of non-HDL-C as the reference, the hazard ratios (HRs) for risk of CVD death in the suitable level, borderline elevated level and elevated level groups were 1.24 (95% CI: 1.08-1.42), 1.57 (95% CI: 1.34-1.85) and 2.31 (95% CI: 1.87-2.86), respectively. The corresponding HRs for CHD death were 1.39 (95% CI: 1.10-1.76), 1.69 (95% CI: 1.28-2.12) and 2.53 (95% CI: 1.76-3.64), respectively. Subgroup analysis revealed significant interaction effects between non-HDL-C and sex, smoking, alcohol consumption, and diabetes (all P interaction<0.05). Sensitivity analyses confirmed that results were consistent with the primary findings regarding the association between non-HDL-C and CVD mortality risk. In conclusion, increasing non-HDL-C levels are associated with higher risks of death from cardiovascular diseases, including stroke and CHD. The risk of CVD death associated with elevated non-HDL-C is greater among males, individuals with a history of diabetes, smokers or drinkers. In the future, attention should be paid to the monitoring of non-HDL-C in community health management, and the intensive and personalized management of blood lipids in high-risk population should be strengthened.

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