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Published on: April 16, 2018
Programmed Release METTL3-14 Inhibitor Microneedle Protects Myocardial Function by Reducing Drp1 m6A
Boyue Huang1, Liu Xie2,3, Ming Ke2
1Department of Anatomy, and Laboratory of Neuroscience and Tissue Engineering, Basic Medical College, Chongqing Medical University, Chongqing 400016, China.
Abstract:
M6A modification is an RNA-important processing event mediated by methyltransferases METTL3 and METTL14 and the demethylases. M6A dynamic changes after myocardial infarction (MI), involved in the massive loss of cardiomyocytes due to hypoxia, as well as the recruitment and activation of myofibroblasts. Balanced mitochondrial fusion and fission are essential to maintain intracardiac homeostasis and reduce poststress myocardial remodeling. Double-layer programmed drug release microneedle (DPDMN) breaks the limitations of existing therapeutic interventions in one period or one type of cells, and multitargeted cellular combination has more potential in MI therapy. By employing hypoxia-ischemic and TGF-β1-induced fibrosis cell models, we found that METTL3-14 inhibition effectively decreased cardiomyocyte death through the reduction of mitochondrial fragmentation and inhibiting myofibrillar transformation. DPDMN treatment of MI in rat models showed improved cardiac function and decreased infarct size and fibrosis level, demonstrating its superior effectiveness. The DPDMN delivers METTL3 inhibitor swiftly in the early phase to rescue dying cardiomyocytes and slowly in the late phase to achieve long-term suppression of fibroblast over proliferation, collagen synthesis, and deposition. RIP assay and mechanistic investigation confirmed that METTL3 inhibition reduced the translation efficiency of Drp1 mRNA by 5'UTR m6A modification, thus decreasing the Drp1 protein level and mitochondrial fragment after hypoxic-ischemic injury. This project investigated the efficacy of DPDMNs-loaded METTL3 inhibitor in MI treatment and the downstream signaling pathway proteins, providing an experimental foundation for the translation of the utility, safety, and versatility of microneedle drug delivery for MI into clinical applications.
Insights
This study shows that inhibiting METTL3-14 with microneedles improves heart function after myocardial infarction (MI) by protecting cardiomyocytes and reducing fibrosis. This novel drug delivery system offers a promising therapeutic approach for MI treatment.
Area of Science:
- Biochemistry
- Cardiovascular Biology
- Biomaterials Science
Background:
- Myocardial infarction (MI) involves cardiomyocyte loss and cardiac remodeling, influenced by dynamic RNA modifications like m6A.
- Mitochondrial dynamics (fusion/fission) are critical for cardiac homeostasis, and their imbalance contributes to post-MI damage.
- Current MI therapies face limitations in timing and cell targeting.
Purpose of the Study:
- To investigate the therapeutic potential of targeting METTL3-14 in MI.
- To evaluate a double-layer programmed drug release microneedle (DPDMN) system for MI treatment.
- To elucidate the molecular mechanisms by which METTL3 inhibition impacts cardiomyocyte death and fibrosis.
Main Methods:
- Utilized hypoxia-ischemic and TGF-β1-induced cell models to assess METTL3-14 inhibition effects.
- Employed DPDMNs loaded with a METTL3 inhibitor for treating MI rat models.
- Conducted RIP assays and mechanistic investigations to confirm molecular targets and pathways.
Main Results:
- METTL3-14 inhibition reduced cardiomyocyte death by mitigating mitochondrial fragmentation and myofibrillar transformation in vitro.
- DPDMN treatment in MI rats significantly improved cardiac function, reduced infarct size, and decreased fibrosis.
- DPDMN demonstrated dual-phase drug release, targeting early cardiomyocyte rescue and late-stage fibrosis suppression.
- METTL3 inhibition was confirmed to decrease Drp1 protein levels by affecting m6A modification of its mRNA, reducing mitochondrial fragmentation.
Conclusions:
- Targeting METTL3-14 with DPDMNs is a potent therapeutic strategy for MI.
- The DPDMN system offers a versatile and effective approach for MI treatment by enabling precise, dual-phase drug delivery.
- This research provides a strong foundation for translating microneedle technology for MI treatment into clinical practice.
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