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In Vivo Nanovector Delivery of a Heart-specific MicroRNA-sponge
Published on: June 15, 2018
Possible implication of miR-142-3p in coronary microembolization induced myocardial injury via ATXN1L/HDAC3/NOL3 axis
Yuli Xu1, Xiangwei Lv1, Ruping Cai1
1Department of Cardiology, Affiliated Hospital of Guilin Medical University, No.15, Lequn Road, Guilin, Guangxi, 541001, People's Republic of China.
Abstract:
This study aims to explore the mechanism underlying miR-142-3p regulating myocardial injury induced by coronary microembolization (CME) through ATXN1L. miR-142-3p overexpression or ATXN1L knockout adenovirus vectors were injected into rats before CME treatment. Cardiac functions were examined by echocardiography, and pathologies of myocardial tissues were assessed. Then, serum cTnI and IL-1β contents and concentrations of IL-1β and IL-18 in cell supernatant were measured. Immunofluorescence determined the localization of histone deacetylase 3 (HDAC3). The interaction between miR-142-3p and ATXN1L as well as the binding between HDAC3 and histone 3 (H3) was identified. The binding of ATXN1L and HDAC3 to NOL3 promoter was verified using ChIP. The levels of ATXN1L, NOL3, and miR-142-3p as well as apoptosis- and pyroptosis-related proteins and acetyl-histone 3 (ac-H3) were evaluated. CME treatment impaired the cardiac functions in rats and increased cTnI content. CME rats showed microinfarction foci in myocardial tissues. After CME treatment, miR-142-3p and NOL3 were modestly expressed while ATXN1L content was elevated, in addition to increases in apoptosis and pyroptosis. miR-142-3p overexpression or ATXN1L knockout alleviated CME-induced myocardial injury, cardiomyocyte apoptosis, and pyroptosis in myocardial tissues. miR-142-3p regulated ATXN1L expression in a targeted manner. In the cellular context, miR-142-3p overexpression attenuated apoptosis and pyroptosis in cardiomyocytes, which was partly counteracted by ATXN1L overexpression. ATXN1L functioned on cardiomyocytes by promoting deacetylation of H3 through HDAC3 and thus inhibited NOL3 expression. Inhibition of HDAC3 or overexpression of NOL3 ameliorated the promotive effects of ATXN1L on cardiomyocyte apoptosis and pyroptosis. In vivo and in vitro evidence in this study supported that miR-142-3p could attenuate CME-induced myocardial injury via ATXN1L/HDAC3/NOL3. HIGHLIGHTS: CME model witnessed aberrant expression of miR-142-3p, ATXN1L, and NOL3; miR-142-3p negatively regulated ATXN1L; miR-142-3p mediated CME-induced myocardial injury through ATXN1L; ATXN1L promoted deacetylation of H3 through HDAC3 and thus inhibited NOL3 expression; ATXN1L acted on cardiomyocyte apoptosis and pyroptosis through HDAC3/NOL3 axis.
Insights
MicroRNA-142-3p (miR-142-3p) protects against myocardial injury by targeting ATXN1L, reducing cardiomyocyte apoptosis and pyroptosis. This mechanism involves the ATXN1L/HDAC3/NOL3 axis, offering a potential therapeutic target for coronary microembolization.
Area of Science:
- Cardiovascular Biology
- Molecular Medicine
- Cellular Pathology
Background:
- Coronary microembolization (CME) induces myocardial injury, characterized by impaired cardiac function, inflammation, and cell death.
- Aberrant microRNA expression is implicated in cardiovascular diseases, but specific roles in CME-induced injury require elucidation.
Purpose of the Study:
- To investigate the regulatory mechanism of miR-142-3p in myocardial injury following coronary microembolization (CME).
- To elucidate the role of ATXN1L in CME-induced cardiomyocyte apoptosis and pyroptosis.
- To identify the downstream signaling pathway involving ATXN1L, HDAC3, and NOL3.
Main Methods:
- Adenovirus vectors were used to overexpress miR-142-3p or knockout ATXN1L in rats prior to CME induction.
- Cardiac function was assessed via echocardiography; myocardial pathology, apoptosis, and pyroptosis were evaluated.
- Molecular interactions were confirmed using immunofluorescence, co-immunoprecipitation, and chromatin immunoprecipitation (ChIP) assays.
- In vitro studies utilized cultured cardiomyocytes to confirm cellular mechanisms.
Main Results:
- CME induced significant myocardial injury, cardiac dysfunction, and elevated serum cardiac troponin I (cTnI) and IL-1β.
- miR-142-3p overexpression or ATXN1L knockout attenuated CME-induced myocardial damage, apoptosis, and pyroptosis.
- miR-142-3p directly targeted and downregulated ATXN1L expression.
- ATXN1L promoted histone 3 (H3) deacetylation via histone deacetylase 3 (HDAC3), inhibiting NOL3 expression and exacerbating apoptosis/pyroptosis.
Conclusions:
- miR-142-3p exerts a protective effect against CME-induced myocardial injury by negatively regulating ATXN1L.
- The ATXN1L/HDAC3/NOL3 axis plays a critical role in mediating cardiomyocyte apoptosis and pyroptosis following CME.
- Targeting the miR-142-3p/ATXN1L/HDAC3/NOL3 pathway represents a promising therapeutic strategy for myocardial injury.
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