Related Experiment Video
Updated: Jul 4, 2025

Author Spotlight: Tracing the Ferroptotic Signatures and Cell Death Dynamics in Medulloblastoma for Advanced Therapeutics
Published on: March 15, 2024
LuQi formula attenuates Cardiomyocyte ferroptosis via activating Nrf2/GPX4 signaling axis in heart failure
Peipei Cheng1, Xinting Wang1, Qian Liu1
1Institute of Cardiovascular Disease of Integrated Traditional Chinese and Western Medicine, Shuguang Hospital Affiliated to Shanghai University of Traditional Chinese Medicine, Shanghai 201203, China; Branch of National Clinical Research Center for Chinese Medicine Cardiology, Shuguang Hospital Affiliated to Shanghai University of Traditional Chinese Medicine, Shanghai 201203, China.
Insights
LuQi formula (LQF) prevents heart failure (HF) by inhibiting cardiomyocyte ferroptosis. LQF activates the Nrf2/GPX4 signaling pathway, offering a novel therapeutic strategy for cardiovascular diseases.
Area of Science:
- Cardiovascular Research
- Cellular Biology
- Pharmacology
Background:
- Heart failure (HF) is the terminal stage of cardiovascular diseases with no effective interventions.
- LuQi formula (LQF) is clinically used to improve cardiac function in HF patients, but its mechanism is unclear.
- Cardiomyocyte ferroptosis is a key pathogenic mechanism in HF.
Purpose of the Study:
- To investigate if LQF ameliorates HF by preventing cardiomyocyte ferroptosis.
- To elucidate the underlying molecular mechanism of LQF's action in HF.
Main Methods:
- Constructed HF mouse models using transverse aortic constriction (TAC) and utilized neonatal rat cardiomyocytes (NRCMs) for in vitro studies.
- Employed high-performance liquid chromatography (HPLC), transcriptomic, and proteomic analyses to identify LQF compounds and targets.
- Assessed cardiac hypertrophy, fibrosis, mitochondrial morphology, and ferroptosis markers (Fe2+, ROS, MDA, GSH, GSSH).
- Utilized molecular docking and Western blot to evaluate the interaction of LQF components with key proteins and signaling pathways (Nrf2/GPX4).
Main Results:
- Identified nine primary active ingredients in LQF.
- LQF attenuated myocardial hypertrophy, fibrosis, and cardiomyocyte ferroptosis, indicated by reduced ROS and improved mitochondrial morphology.
- Molecular docking and Western blot confirmed LQF activates the Nrf2/GPX4 signaling axis, while decreasing SLC7A11 and HO-1 expression.
Conclusions:
- LQF prevents cardiomyocyte ferroptosis in heart failure by activating the Nrf2/GPX4 signaling pathway.
- LQF also suppresses SLC7A11 and HO-1 expression, contributing to its cardioprotective effects.
- These findings provide a scientific basis for LQF as a potential novel therapeutic agent for cardiovascular diseases.
Background:
The terminal stage of all cardiovascular diseases typically culminates in heart failure (HF), with no effective intervention available to halt its progression. LuQi formula (LQF) has been employed in clinical for numerous years to significantly ameliorate cardiac function in HF patients. Nevertheless, the underlying mechanism of LQF's efficacy remains inadequately comprehended. Cardiomyocyte ferroptosis has served as a pathogenic mechanism in HF. The goal of the current experiment was to ascertain whether LQF ameliorates HF by preventing cardiomyocyte ferroptosis and to elucidate the intrinsic mechanism involved.
Purpose:
This research objective is to investigate the impact and underlying mechanism of LQF attenuating cardiomyocyte ferroptosis in heart failure.
Methods:
Transverse aortic constriction (TAC) was performed to construct the HF mouse model. Neonatal rat cardiomyocytes (NRCMs) were subjected to in vitro experiments. High-performance liquid chromatography (HPLC) identified the bioactive compounds in LQF. Transcriptomic and quantitative proteomic analyses revealed the potential targets of LQF anti-HF. Specifically, histological staining evaluated cardiac hypertrophy and fibrosis. Transmission electron microscopy (TEM) observed mitochondrial morphology. The content of Fe2+, ROS, MDA, GSH, and GSSH was detected using kits. Molecular docking evaluated the binding activities between essential active ingredients of LQF and critical proteins of cardiomyocyte ferroptosis. Mechanistically, the expression levels of Nrf2, Keap1, HO-1, SLC7A11, and GPX4 were evaluated using qPCR, Western blot (WB), or immunohistochemical staining.
Results:
The primary nine active ingredients in LQF were detected. Transcriptomic and proteomic analyses demonstrated that LQF may ameliorate HF by preventing cardiomyocyte ferroptosis. Histomorphometric analyses revealed that LQF attenuates myocardial hypertrophy and fibrosis. TEM revealed that LQF diminished mitochondrial shrinkage and increased membrane density in myocardial tissue. Additionally, LQF diminished reactive oxygen species (ROS) generation in cardiomyocytes and suppressed cardiomyocyte ferroptosis. Furthermore, the molecular docking technique revealed that the primary active ingredients of LQF had suitable binding activities with Nrf2, GPX4, and SLC7A11. Western analysis further verified that LQF activated the Nrf2/GPX4 signaling axis. decreased SLC7A11 and HO-1 expression.
Conclusions:
These results demonstrated that LQF prevents cardiomyocyte ferroptosis via activating Nrf2/GPX4 signaling axis and suppressing SLC7A11 and HO-1 expression. Concurrently, it contributed to elucidating the intrinsic mechanism of LQF and provided a scientific rationale for its development as a novel cardiovascular therapeutic drug.
More Related Videos
04:27Author Spotlight: Advantages of Pressure-Volume Loop Measurement Method in Cardiovascular Research
Published on: January 12, 2024
09:16Suppression of Pro-fibrotic Signaling Potentiates Factor-mediated Reprogramming of Mouse Embryonic Fibroblasts into Induced Cardiomyocytes
Published on: June 3, 2018
Related Concept Videos
Necrosis
Morphological Manifestations of Necrosis
Necrotic cells show different types of morphological appearance depending on the type of tissue and infection. In coagulative necrosis, cells become...
Pathophysiology of Heart Failure
Heart Failure Drugs: Inotropic Agents