1. Academic Validation
  2. Biomimetic Microparticles with Myocardial and Endocardial Integration for Drug Toxicity Studies

Biomimetic Microparticles with Myocardial and Endocardial Integration for Drug Toxicity Studies

  • Anal Chem. 2025 May 20;97(19):10369-10377. doi: 10.1021/acs.analchem.5c00672.
Tong Xu 1 2 3 Yingrui Zhang 1 2 Shiyu Chen 1 2 Zengnan Wu 2 Xian-Li Meng 1 Yi Zhang 1 3 Jin-Ming Lin 2
Affiliations

Affiliations

  • 1 State Key Laboratory of Southwestern Chinese Medicine Resources, School of Pharmacy, Chengdu University of Traditional Chinese Medicine, Chengdu 611137, China.
  • 2 Beijing Key Laboratory of Microanalytical Methods and Instrumentation, Key Laboratory of Bioorganic Phosphorus Chemistry & Chemical Biology (Ministry of Education), Department of Chemistry, Tsinghua University, Beijing 100084, China.
  • 3 School of Ethnic Medicine, Chengdu University of Traditional Chinese Medicine, Chengdu 611137, China.
Abstract

Hydrogel microparticles are versatile tools for organ modeling due to their simplicity, uniformity, and customizability, yet their limited physiological relevance constrains practical applications. In this study, a heart microparticle model that incorporates endocardial and myocardial structures and functions was developed. Hydrogel microparticles with rough surfaces, embedded with cardiomyocytes, were created using a custom-designed microfluidic device. Surface modification with matrigel enhanced the adhesion and connectivity of endothelial cells, enabling the formation of a densely packed endothelial layer. Real-time analysis, combining microparticle culture with a microfluidic chip-mass spectrometry system, demonstrated the utility of these particles in detecting the cardiotoxicity of heart-related drugs. For example, the analysis revealed that the cardiotoxicity of aconitine and Tie-bang-chui (TBC) was associated with elevated lactate and succinate levels, while processed TBC mitigated this toxicity of TBC by reducing these metabolites. These biomimetic microparticle models provide a novel platform for real-time metabolite analysis and cardiotoxicity research.

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