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Micro(nano)plastics in the Development of Myocardial Fibrosis: From Clinical Detection to Molecular Mechanism.

Micro(nano)plastics in the Development of Myocardial Fibrosis: From Clinical Detection to Molecular Mechanism.

期刊: Circ Res 日期: 2026-01-01 PMID: 42037307 DOI: 10.1161/CIRCRESAHA.125.327073 浏览: 69
作者: Pan Yilin, Liu Linqi, Luo Jiyuan, Zhou Xiaozheng, Wang Yu, Zheng Lin, Yang Yunxiao, Peng Zhan, Li Jiawei, Su Guanming, Xue Mianqi, Hua Kun, Chen Hanqing, Yang Xiubin
Yilin, P., Linqi, L., Jiyuan, L., Xiaozheng, Z., Yu, W., Lin, Z., Yunxiao, Y., Zhan, P., Jiawei, L., Guanming, S., Mianqi, X., Kun, H., Hanqing, C., & Xiubin, Y. (2026). Micro(nano)plastics in the Development of Myocardial Fibrosis: From Clinical Detection to Molecular Mechanism.. Circ Res. https://doi.org/10.1161/CIRCRESAHA.125.327073
Yilin P, Linqi L, Jiyuan L, Xiaozheng Z, Yu W, Lin Z, et al. Micro(nano)plastics in the Development of Myocardial Fibrosis: From Clinical Detection to Molecular Mechanism.. Circ Res. 2026; doi: 10.1161/CIRCRESAHA.125.327073
Yilin P, Linqi L, Jiyuan L, et al. Micro(nano)plastics in the Development of Myocardial Fibrosis: From Clinical Detection to Molecular Mechanism.[J]. Circ Res. 2026. DOI: 10.1161/CIRCRESAHA.125.327073.
@article{yilin2026,
  author = {Pan Yilin and Liu Linqi and Luo Jiyuan and Zhou Xiaozheng and Wang Yu and Zheng Lin and Yang Yunxiao and Peng Zhan and Li Jiawei and Su Guanming and Xue Mianqi and Hua Kun and Chen Hanqing and Yang Xiubin},
  title = {Micro(nano)plastics in the Development of Myocardial Fibrosis: From Clinical Detection to Molecular Mechanism.},
  journal = {Circ Res},
  year = {2026},
  doi = {10.1161/CIRCRESAHA.125.327073},
  note = {PMID: 42037307},
}
TY  - JOUR
AU  - Pan Yilin
AU  - Liu Linqi
AU  - Luo Jiyuan
AU  - Zhou Xiaozheng
AU  - Wang Yu
AU  - Zheng Lin
AU  - Yang Yunxiao
AU  - Peng Zhan
AU  - Li Jiawei
AU  - Su Guanming
AU  - Xue Mianqi
AU  - Hua Kun
AU  - Chen Hanqing
AU  - Yang Xiubin
TI  - Micro(nano)plastics in the Development of Myocardial Fibrosis: From Clinical Detection to Molecular Mechanism.
T2  - Circ Res
PY  - 2026
DO  - 10.1161/CIRCRESAHA.125.327073
AN  - PMID:42037307
ER  - 

摘要

Micro(nano)plastics (MNPs) are pervasive environmental contaminants, yet their presence in human cardiac tissue and their potential contribution to myocardial fibrosis remain unclear. We investigated whether myocardial MNP burden is associated with fibrosis severity in patients and evaluated mechanistic plausibility in mice. Left atrial appendage tissues were collected from patients undergoing cardiac surgery (n=33). MNP burden and polymer composition were quantified by pyrolysis-gas chromatography/mass spectrometry, and fibrosis was quantified histologically. In mice, 100-nm or 1-µm polystyrene nanoplastics were administered by oral gavage in coexposure and sequential exposure protocols with isoprenaline. Cardiac function was assessed by echocardiography, and fibrosis was evaluated by histology and immunohistochemistry. Transcriptomics, metabolomics, and 16S ribosomal RNA sequencing were performed to identify pathways linked to MNP exposure. MNPs were detected in all human cardiac samples. Patients with high fibrosis exhibited higher total MNP levels than those with low fibrosis (171.74 [95% CI, 158.18-202.39] versus 119.33 [95% CI, 102.75-148.44] µg/g tissue; P=2.5×10-4), driven predominantly by elevated nanoplastics (122.83 [95% CI, 100.10-149.06] versus 86.39 [95% CI, 36.85-103.74] µg/g; P=0.010). Polystyrene and polyvinyl chloride were enriched in high-fibrosis tissues (polystyrene: P=3.3×10-4; polyvinyl chloride: P=0.002). Transcriptomics indicated activation of inflammatory and profibrotic pathways (TNF/NF-κB [nuclear factor-κB], TGF-β [transforming growth factor-beta], and MAPK), supported by increased α-SMA (alpha-smooth muscle actin), COL1 (collagen I), and TGF-β1 immunostaining, while metabolomics suggested perturbations in lipid metabolism and mitochondrial function. In mice, polystyrene exposure exacerbated isoprenaline-induced systolic dysfunction and myocardial fibrosis in both experimental paradigms and recapitulated pathway signatures related to cell-matrix interactions. Myocardial MNP burden, particularly nanoplastics, is associated with greater fibrosis in humans, and experimental polystyrene exposure aggravates stress-induced myocardial remodeling in vivo. Multiomics analyses nominate inflammatory, ECM (extracellular matrix), and metabolic programs as candidate mediators of MNP-associated cardiotoxicity.

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