← 返回

Life-span-dependent transcriptional dynamics of the human heart.

Life-span-dependent transcriptional dynamics of the human heart.

期刊: Science advances 日期: 2026-06-19 PMID: 42308288 DOI: 10.1126/sciadv.aeg2614 浏览: 30
作者: Jia H, Chen X, Chang Y, Wang Y, Lindberg EL, Cui H, Feng Y, Zhang N, Zhang X, Xu M
H, J., X, C., Y, C., Y, W., EL, L., H, C., Y, F., N, Z., X, Z., & M, X. (2026). Life-span-dependent transcriptional dynamics of the human heart.. Science advances. https://doi.org/10.1126/sciadv.aeg2614
H J, X C, Y C, Y W, EL L, H C, et al. Life-span-dependent transcriptional dynamics of the human heart.. Science advances. 2026; doi: 10.1126/sciadv.aeg2614
H J, X C, Y C, et al. Life-span-dependent transcriptional dynamics of the human heart.[J]. Science advances. 2026. DOI: 10.1126/sciadv.aeg2614.
@article{h2026,
  author = {Jia H and Chen X and Chang Y and Wang Y and Lindberg EL and Cui H and Feng Y and Zhang N and Zhang X and Xu M},
  title = {Life-span-dependent transcriptional dynamics of the human heart.},
  journal = {Science advances},
  year = {2026},
  doi = {10.1126/sciadv.aeg2614},
  note = {PMID: 42308288},
}
TY  - JOUR
AU  - Jia H
AU  - Chen X
AU  - Chang Y
AU  - Wang Y
AU  - Lindberg EL
AU  - Cui H
AU  - Feng Y
AU  - Zhang N
AU  - Zhang X
AU  - Xu M
TI  - Life-span-dependent transcriptional dynamics of the human heart.
T2  - Science advances
PY  - 2026
DO  - 10.1126/sciadv.aeg2614
AN  - PMID:42308288
ER  - 

摘要

The human heart undergoes continuous transcriptional remodeling from development through aging, yet the cellular and regulatory features governing this process remain incompletely defined. Here, we generated a single-nucleus RNA sequencing atlas of 442,239 nuclei from 54 nonfailing myocardial tissues of 29 individuals spanning development, adulthood, and aging, covering left and right ventricles. Across all major cell types, we uncovered coordinated yet cell type-specific transcriptional trajectories that converge on progressive loss of gene expression homeostasis, stress responses, and inflammatory signaling over the life span. Cardiomyocytes displayed distinct age-associated transcriptional states enriched for senescence- and disease-related signatures. Regulatory network analysis identified PRDM16 as a transcriptional regulator whose activity declined with age in cardiomyocytes. Functional perturbation of PRDM16 in human cardiomyocyte models induced senescence, metabolic dysfunction, and stress responses, whereas its rebalancing in aged mouse hearts improved cardiac function and partially reversed aging-associated transcriptional programs. Last, leveraging life-span-resolved single-nucleus data, we constructed cardiac transcriptomic age prediction models that closely tracked chronological age in nonfailing hearts and revealed deviations consistent with accelerated aging in cardiomyopathies. Together, this study provides a comprehensive single-nucleus resource of the human heart across the life span and delineates cellular and regulatory features associated with cardiac aging.

AI 智能解读

相关文献

返回分类: 心血管 查看原文 (DOI)
已选择 0 篇文献