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Circ-SKA3 Enhances Doxorubicin Toxicity in AC16 Cells Through miR-1303/TLR4 Axis
Bin Li1, Xinyong Cai1, Yunxia Wang1
1Department of Cardiology, Jiangxi Provincial People's Hospital Affiliated to Nanchang University.
Abstract:
Doxorubicin (DOX) is a widely used anticancer drug, but its cardiotoxicity largely limits its clinical utilization. Circular RNA spindle and kinetochore-associated protein 3 (circ-SKA3) were found to be differentially expressed in heart failure patients. In this study, we investigated the role and mechanism of circ-SKA3 in DOX-induced cardiotoxicity.The quantitative real-time polymerase chain reaction and western blot assays were applied to measure the expression of circ-SKA3, microRNA (miR) -1303, and toll-like receptor 4 (TLR4). The viability and apoptosis of AC16 cells were analyzed using cell counting kit-8, flow cytometry, and western blot assays. The interaction between miR-1303 and circ-SKA3 or TLR4 was verified using dual-luciferase reporter and RNA immunoprecipitation assays. Exosomes were collected from culture media by the use of commercial kits and then qualified by transmission electron microscopy.The expression of circ-SKA3 and TLR4 was increased, whereas miR-1303 expression was decreased in DOX-treated AC16 cells. DOX treatment promoted cell apoptosis and inhibited cell viability in AC16 cells in vitro, which was partially reversed by circ-SKA3 knockdown, TLR4 silencing, or miR-1303 overexpression. Mechanistically, circ-SKA3 served as a sponge for miR-1303 to upregulate TLR4, which was confirmed to be a target of miR-1303. Additionally, circ-SKA3 contributed to DOX-induced cardiotoxicity through the miR-1303/TLR4 axis. Further studies suggested that circ-SKA3 was overexpressed in exosomes extracted from DOX-mediated AC16 cells, which could be internalized by surrounding untreated AC16 cells.Circ-SKA3 enhanced DOX-induced toxicity in AC16 cells through the miR-1303/TLR4 axis. Extracellular circ-SKA3 was packaged into exosomes, and exosomal circ-SKA3 could function as a mediator in intercellular communication between AC16 cells.
Insights
Circular RNA spindle and kinetochore-associated protein 3 (circ-SKA3) exacerbates doxorubicin-induced cardiotoxicity by sponging miR-1303 to upregulate toll-like receptor 4 (TLR4). Exosomal circ-SKA3 mediates intercellular communication, worsening drug toxicity.
Area of Science:
- Cardiology
- Molecular Biology
- Biochemistry
Background:
- Doxorubicin (DOX) is a vital anticancer drug, but its clinical use is limited by cardiotoxicity.
- Circular RNA spindle and kinetochore-associated protein 3 (circ-SKA3) is implicated in heart failure.
- The role of circ-SKA3 in DOX-induced cardiotoxicity requires elucidation.
Purpose of the Study:
- To investigate the role and mechanism of circ-SKA3 in DOX-induced cardiotoxicity.
- To explore the interaction between circ-SKA3, miR-1303, and toll-like receptor 4 (TLR4).
- To determine the involvement of exosomal circ-SKA3 in intercellular communication.
Main Methods:
- Quantitative real-time PCR and western blot to assess gene and protein expression.
- Cell viability and apoptosis assays (CCK-8, flow cytometry).
- Dual-luciferase reporter and RNA immunoprecipitation assays to confirm molecular interactions.
- Exosome isolation and characterization via transmission electron microscopy.
Main Results:
- DOX treatment increased circ-SKA3 and TLR4 expression while decreasing miR-1303 in AC16 cells.
- circ-SKA3 knockdown, TLR4 silencing, or miR-1303 overexpression partially reversed DOX-induced apoptosis and viability inhibition.
- circ-SKA3 acts as a molecular sponge for miR-1303, upregulating TLR4, a validated miR-1303 target.
- DOX-treated cells released exosomes containing elevated circ-SKA3, which were internalized by untreated cells.
Conclusions:
- circ-SKA3 exacerbates DOX-induced cardiotoxicity via the miR-1303/TLR4 axis.
- Exosomal circ-SKA3 contributes to cardiotoxicity through intercellular communication.
- circ-SKA3 represents a potential therapeutic target for mitigating DOX cardiotoxicity.

