Identification of Hypolipidemic Constituents from Microctis folium Using an Integrated Strategy of Chemical Profiling, Pharmacokinetics, Network Pharmacology and Experimental Validation

Background/Objective: Traditionally derived from the dried leaves of Microcos paniculata L., Microctis folium (M. folium) has been employed to manage various inflammatory and metabolic conditions. Despite its reported hypolipidemic potential, the active constituents contributing to this effect and their molecular mechanisms of action remain to be determined. Therefore, this study aimed to systematically identify the active hypolipidemic constituents of M. folium and elucidate their mechanisms of action through an integrated strategy combining chemical profiling, pharmacokinetic screening, network pharmacology, and experimental validation. Methods: UPLC fingerprint and UPLC-QQQ-MS/MS were employed to characterize and quantify the chemical constituents of M. folium. Pharmacokinetic analysis was conducted to identify systemically absorbed compounds. Network pharmacology was applied to predict potential targets and signaling pathways. The lipid-lowering effects were subsequently validated in vitro using an oleic acid/palmitic acid (OA/PA)-induced lipid accumulation model in HepG2 cells and in vivo in a Triton WR-1339-induced hyperlipidemia mouse model. Results: UPLC fingerprint analysis identified 15 common peaks among 21 batches of M. folium, with similarity values ranging from 0.885 to 0.990, indicating good chemical consistency. Eighteen representative compounds were quantified, among which flavone C-glycosides and phenolic acids were predominant. Pharmacokinetic results demonstrated that multiple M. folium’s constituents were absorbed into systemic circulation. Network pharmacology analysis identified 73 potential targets related to hyperlipidemia and highlighted the PI3K-Akt signaling pathway as a key regulatory pathway. In vitro experiments showed that M. folium’s compounds significantly reduced intracellular lipid accumulation and oxidative stress in OA/PA-induced HepG2 cells. Furthermore, in vivo studies demonstrated that vitexin, ferulic acid, isoferulic acid, and N-trans-feruloyltyramine significantly reduced serum and hepatic lipid levels, including TC, TG, and LDL-c, alleviated hepatic steatosis, and improved liver injury and oxidative stress markers in Triton WR-1339-induced hyperlipidemic mice. Conclusions: M. folium exerts significant lipid-lowering effects through multi-component and multi-target mechanisms involving regulation of lipid metabolism and oxidative stress, partly mediated by activation of the PI3K-Akt signaling pathway. These findings provide a scientific basis for the development of M. folium’s natural agents for the treatment of hyperlipidemia.

Authors

Institutions

Publication Details

Journal
Pharmaceuticals
Published
2026-08-26
DOI
https://doi.org/10.3390/ph19091349
Primary Topic
Phytochemicals and Antioxidant Activities
Type
article
Field-Weighted Citation Impact
0.00

Funders

Controls
|||
ALL TIME
JAN
FEB
MAR
APR
MAY
JUN
JUL
AUG
SEP
article

Identification of Hypolipidemic Constituents from Microctis folium Using an Integrated Strategy of Chemical Profiling, Pharmacokinetics, Network Pharmacology and Experimental Validation

Yanchang Liu, Guanlin Xiao, Zhihao Zeng, Wanchun Chen et al.
Pharmaceuticals
Phytochemicals and Antioxidant Activities
article

Identification of Hypolipidemic Constituents from Microctis folium Using an Integrated Strategy of Chemical Profiling, Pharmacokinetics, Network Pharmacology and Experimental Validation

Yanchang Liu, Guanlin Xiao, Zhihao Zeng, Wanchun Chen, Jingnian Zhang, Xiaoli Bi, Yunhui Ouyang, Weitao Chen
article en

Abstract

Background/Objective: Traditionally derived from the dried leaves of Microcos paniculata L., Microctis folium (M. folium) has been employed to manage various inflammatory and metabolic conditions. Despite its reported hypolipidemic potential, the active constituents contributing to this effect and their molecular mechanisms of action remain to be determined. Therefore, this study aimed to systematically identify the active hypolipidemic constituents of M. folium and elucidate their mechanisms of action through an integrated strategy combining chemical profiling, pharmacokinetic screening, network pharmacology, and experimental validation. Methods: UPLC fingerprint and UPLC-QQQ-MS/MS were employed to characterize and quantify the chemical constituents of M. folium. Pharmacokinetic analysis was conducted to identify systemically absorbed compounds. Network pharmacology was applied to predict potential targets and signaling pathways. The lipid-lowering effects were subsequently validated in vitro using an oleic acid/palmitic acid (OA/PA)-induced lipid accumulation model in HepG2 cells and in vivo in a Triton WR-1339-induced hyperlipidemia mouse model. Results: UPLC fingerprint analysis identified 15 common peaks among 21 batches of M. folium, with similarity values ranging from 0.885 to 0.990, indicating good chemical consistency. Eighteen representative compounds were quantified, among which flavone C-glycosides and phenolic acids were predominant. Pharmacokinetic results demonstrated that multiple M. folium’s constituents were absorbed into systemic circulation. Network pharmacology analysis identified 73 potential targets related to hyperlipidemia and highlighted the PI3K-Akt signaling pathway as a key regulatory pathway. In vitro experiments showed that M. folium’s compounds significantly reduced intracellular lipid accumulation and oxidative stress in OA/PA-induced HepG2 cells. Furthermore, in vivo studies demonstrated that vitexin, ferulic acid, isoferulic acid, and N-trans-feruloyltyramine significantly reduced serum and hepatic lipid levels, including TC, TG, and LDL-c, alleviated hepatic steatosis, and improved liver injury and oxidative stress markers in Triton WR-1339-induced hyperlipidemic mice. Conclusions: M. folium exerts significant lipid-lowering effects through multi-component and multi-target mechanisms involving regulation of lipid metabolism and oxidative stress, partly mediated by activation of the PI3K-Akt signaling pathway. These findings provide a scientific basis for the development of M. folium’s natural agents for the treatment of hyperlipidemia.

PharmaceuticalsVol. 19(9)
Guangzhou University of Chinese Medicine (CN), Guangdong Provincial Hospital of Traditional Chinese Medicine (CN), Traditional Chinese Medicine Bureau of Guangdong Province (CN)
Basic and Applied Basic Research Foundation of Guangdong Province
Openalex Percentile: Top 14%
Phytochemicals and Antioxidant Activities
AI Navigator

Ask Laika to Summarize, Analyze, and Connect papers live on the map.

Summarize Papers & Methodologies

Extract key findings, datasets, and comparative methods across publications.

Benchmark Rankings & Visual Analytics

Rank top research institutions, authors, funders, topics, and journals by Field-Weighted Citation Impact (FWCI) and paper volume with instant charts.

Connect Distant Disciplines

Bridge topological clusters on the map to find hidden collaborative intersections.