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.

PubMed

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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