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SYKT Alleviates Doxorubicin-Induced Cardiotoxicity via Modulating ROS-Mediated p53 and MAPK Signal Pathways
Ting Chen1, Zhiyong Deng1, Ruilian Zhao2
1Department of Nuclear Medicine, Tumor Hospital of Yunnan Province, The Third Affiliated Hospital of Kunming Medical College, Kunming, China.
Abstract:
Backgrounds. Doxorubicin (DOX) is an effective therapeutic drug for malignant tumors; however, its clinical applications were limited by its side effects, especially the cardiotoxicity caused by ROS-mediated p53 and MAPK signal pathways' activation-induced cell apoptosis. Sanyang Xuedai mixture (SYKT) has been reported as an antioxidant agent and attenuated DOX-induced cardiotoxicity by targeting ROS-mediated apoptosis, but the mechanisms are still not fully delineated. Objective. This study aimed at investigating whether SYKT alleviated DOX-induced cardiotoxicity by inhibiting ROS-mediated apoptosis and elucidating the role of ROS-mediated p53 and MAPK signal pathways' activation in this process. Materials and Methods. Identification, separation, and culture of mouse primary cardiomyocytes. Cells were treated with DOX (1 μM), SYKT (30 mg/mL), or SYKT coupled with DOX. The p53 inhibitor Pifithrin-α (PFT-α), p38/MAPK inhibitor SB203583 (SB), and JNK inhibitor SP600125 (SP) were used as positive control. Western blot was employed to detected p53 and p38 as well as JNK expressions and the activation and translocation of Bax and cytochrome C. Flow cytometer (FCM) was used to detect the mitochondrial membrane potential and cell apoptosis. Results. After separation and culture, 95% of cells showed positive cTnI expression, which indicated that mouse primary cardiomyocytes were successfully identified in our research. DOX activated p53 and MAPK signal pathways in a time-dependent manner, which were inactivated by being cotreated with SYKT, PFT-α, or SB, respectively. DOX significantly decreased Bax and increased cytochrome c expressions in the cytoplasm, whereas Bax was upregulated and cytochrome c was downregulated in the mitochondria, which were reversed by SYKT treatment. Besides, DOX reduced mitochondria membrane potential (MMP) in cardiomyocytes compared to the control group; SYKT recovered its MMP and attenuated DOX-induced cardiomyocyte injury. Of note, DOX increased the expression levels of cleaved caspase-3 as well as poly ADP-ribose polymerase (PARP) and promoted cell apoptosis, which were also reversed by SYKT treatment. Discussion and Conclusions. Our results indicated that SYKT alleviated DOX-induced cardiotoxicity by inhibiting p53 and MAPK signal pathways' activation-mediated apoptosis, and it might serve as a potential therapeutic agent for DOX-induced cardiotoxicity.
Insights
Sanyang Xuedai mixture (SYKT) protects against Doxorubicin (DOX)-induced cardiotoxicity by inhibiting reactive oxygen species (ROS)-mediated apoptosis via p53 and MAPK pathways. This study reveals SYKT as a potential therapeutic for DOX-induced heart damage.
Area of Science:
- Cardiovascular Pharmacology
- Molecular Toxicology
- Traditional Chinese Medicine
Background:
- Doxorubicin (DOX) is a potent anti-cancer drug, but its use is limited by cardiotoxicity.
- DOX-induced cardiotoxicity involves reactive oxygen species (ROS)-mediated apoptosis via p53 and MAPK pathways.
- Sanyang Xuedai mixture (SYKT) is a traditional agent with reported antioxidant properties, potentially mitigating DOX cardiotoxicity.
Purpose of the Study:
- To investigate if SYKT alleviates DOX-induced cardiotoxicity.
- To elucidate SYKT's mechanism in inhibiting ROS-mediated apoptosis.
- To determine SYKT's role in modulating p53 and MAPK signaling pathways.
Main Methods:
- Primary mouse cardiomyocytes were isolated and treated with DOX, SYKT, or both.
- Western blot analysis assessed p53, MAPK pathway proteins (p38, JNK), Bax, and cytochrome c.
- Flow cytometry evaluated mitochondrial membrane potential (MMP) and apoptosis rates.
Main Results:
- DOX activated p53 and MAPK pathways, leading to apoptosis and decreased MMP, which SYKT reversed.
- SYKT treatment normalized Bax and cytochrome c expression, suppressed cleaved caspase-3 and PARP, and attenuated cardiomyocyte injury.
- SYKT effectively inhibited DOX-induced apoptosis by modulating p53 and MAPK signaling.
Conclusions:
- SYKT alleviates Doxorubicin-induced cardiotoxicity by inhibiting p53 and MAPK pathway activation-mediated apoptosis.
- SYKT demonstrates potential as a therapeutic agent for mitigating Doxorubicin-induced heart damage.
- The findings highlight SYKT's protective effects against oxidative stress-induced cardiomyocyte apoptosis.
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