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Quantitative visualization of myocardial ischemia- reperfusion-induced cardiac lesions via ferroptosis magnetic particle imaging

  • Wenwen Yang
  • , Yueqi Wang*
  • , Changgeng Fu
  • , Changjian Li
  • , Feng Feng
  • , Hongzheng Li
  • , Ling Tan
  • , Hua Qu
  • , Hui Hui
  • , Jingjing Wang*
  • , Jie Tian*
  • , Linzi Long*
  • *Corresponding author for this work
  • China Academy of Chinese Medical Sciences
  • National Clinical Research Center for Cardiovascular Diseases
  • CAS - Institute of Automation
  • Zhejiang University
  • Beijing University of Chinese Medicine
  • General Hospital of People's Liberation Army
  • Fujian University of Traditional Chinese Medicine

Research output: Contribution to journalArticlepeer-review

Abstract

Myocardial ischemia-reperfusion (MI/R) injury is a complication in vascular reperfusion therapy for MI, occurring in approximately 60% of patients. Ferroptosis is an important process in the development of MI/R cardiac lesions. Transferrin receptor 1 (TfR1), a marker of ferroptosis, corresponds to the changes in MI/R cardiac lesions and is expected to be a biomarker for detecting MI/R-induced ferroptosis. However, the noninvasive in vivo visualization of ferroptosis in MI/R is a big challenge. Thus, this study aimed to develop a novel multimodal imaging platform to identify markers of MI/R cardiac lesions in vivo through targeting TfR1. Methods: Magnetic particle imaging (MPI) modality for ferroptosis based on superparamagnetic cubic-iron oxide nanoparticles (SCIO NPs), named feMPI, has been developed. FeMPI used TfR1 as a typical biomarker. The feMPI probe (SCIO-ICG-CRT-CPPs NPs, CCI NPs) consists of SCIO NPs, TfR1-targeting peptides (CRT), cell-penetrating peptides (CPPs), and indocyanine green (ICG). The specificity and sensitivity of CCI NPs in the MI/R mouse model were evaluated by MPI, magnetic resonance imaging (MRI), and near-infrared (NIR) fluorescent imaging. Results: The intensity of the MPI signal correlates linearly with the percentage of infarct area in MI/R stained by TTC, enabling a quantitative assessment of the extent of cardiac lesions. Notably, these findings are consistent with the standard clinical biochemical indicators in MI/R within the first 24 h. FeMPI detects cardiac injury approximately 48 h prior to the current clinical imaging detection methods of MI/R. Conclusion: The feMPI strategy can be a powerful tool for studying the process of MI/R-induced ferroptosis in vivo, providing clues for molecular imaging and drug development of ferroptosis-related treatments.

Original languageEnglish
Pages (from-to)1081-1097
Number of pages17
JournalTheranostics
Volume14
Issue number3
DOIs
StatePublished - 2024

Keywords

  • ferroptosis
  • magnetic particle imaging
  • myocardial ischemia-reperfusion
  • quantitative
  • visualization

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