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Injured cardiac targeting magnetic nanovesicles for mRNA treatment of myocardial infarction

Authors
 Mun, Dasom  ;  Kang, Ji-Young  ;  Park, Malgeum  ;  Yoo, Gyeongseo  ;  Lee, Jaewoong  ;  Yun, Nuri  ;  Joung, Boyoung 
Citation
 THERANOSTICS, Vol.16(8) : 4090-4112, 2026-01 
Journal Title
THERANOSTICS
ISSN
 1838-7640 
Issue Date
2026-01
MeSH
Animals ; Disease Models, Animal ; Drug Carriers / chemistry ; Drug Delivery Systems / methods ; Interleukin-10 / genetics ; Magnetite Nanoparticles* / administration & dosage ; Magnetite Nanoparticles* / chemistry ; Male ; Mesenchymal Stem Cells / metabolism ; Mice ; Mice, Inbred C57BL ; Myocardial Infarction* / pathology ; Myocardial Infarction* / therapy ; Myocardium / pathology ; Nanoparticles ; RNA, Messenger* / administration & dosage ; RNA, Messenger* / genetics
Keywords
nanovesicles ; lipid nanoparticles ; targeted delivery ; myocardial infarction ; mRNA therapy
Abstract
Rationale: Inflammation and myocardial remodeling are major contributors to the progression of cardiac diseases. mRNA- based therapeutics have emerged as a promising modality for cardiovascular intervention; however, their clinical translation remains constrained by challenges in achieving efficient and spatially precise delivery to diseased cardiac tissue, particularly following myocardial injury. To address this unmet need, a dual-active magnetic nanocarrier was engineered for targeted mRNA delivery to damaged cardiovascular tissue. Methods: The interleukin-10 anti-inflammatory cytokine mRNA (IL-10 mRNA) was encapsulated in lipid nanoparticles, which were fused with nanovesicles derived from mesenchymal stem cells (NVs) and functionalized with cardiac-targeting peptides (T peptides) to form IL-10 mRNA-loaded T-NVs (m10@T-NVs). Magnetic nanoparticles (MNPs) were conjugated with azide-modified antibodies against CD63 and myosin light chain 3 (MLC3), which are overexpressed in damaged myocardial tissue via click chemistry, to enable targeted delivery to injured cardiac tissue. Subsequently, the m10@T-NVs were combined with functionalized MNPs via CD63 interactions to form m10@T-MNVs. Results: m10@T-MNVs were developed and characterized, confirming the functionalization of NVs and MNPs. Under guided of an external magnetic field, m10@T-MNVs exhibited a 4.5-fold increase in accumulation in H2O2-induced injured cardiomyocytes and damaged cardiac regions, achieving significantly higher delivery efficiency. In a mouse model of myocardial infarction (MI), administration of m10@T-MNVs enhanced intramyocardial IL-10 mRNA expression and cytokine production. This led to the polarization of macrophages toward an M2 anti-inflammatory phenotype, mitigation of tissue injury, reduced apoptosis, attenuation of fibrosis, and suppression of pathological myocardial remodeling. Conclusions: Dual-active targeting of injured cardiac tissue using magnetic nanocarriers constitutes a promising therapeutic strategy for cardiovascular diseases by addressing key challenges associated with tissue-selective mRNA delivery in the injured myocardium.
Files in This Item:
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DOI
10.7150/thno.124754
Appears in Collections:
1. College of Medicine (의과대학) > Dept. of Internal Medicine (내과학교실) > 1. Journal Papers
Yonsei Authors
Joung, Bo Young(정보영) ORCID logo https://orcid.org/0000-0001-9036-7225
URI
https://ir.ymlib.yonsei.ac.kr/handle/22282913/211391
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