Ubiquitin-Related Proteostatic Programs in Cycling Fibroblast-Lineage Remodeling After Myocardial Ischemic Injury: A Hypothesis Informed by Single-Cell and Spatial Transcriptomics.
C, Y., W, Z., J, Z., W, C., J, W., L, S., M, B., & Z, Z. (2026). Ubiquitin-Related Proteostatic Programs in Cycling Fibroblast-Lineage Remodeling After Myocardial Ischemic Injury: A Hypothesis Informed by Single-Cell and Spatial Transcriptomics.. International journal of molecular sciences. https://doi.org/10.3390/ijms27146537
C Y, W Z, J Z, W C, J W, L S, et al. Ubiquitin-Related Proteostatic Programs in Cycling Fibroblast-Lineage Remodeling After Myocardial Ischemic Injury: A Hypothesis Informed by Single-Cell and Spatial Transcriptomics.. International journal of molecular sciences. 2026; doi: 10.3390/ijms27146537
C Y, W Z, J Z, et al. Ubiquitin-Related Proteostatic Programs in Cycling Fibroblast-Lineage Remodeling After Myocardial Ischemic Injury: A Hypothesis Informed by Single-Cell and Spatial Transcriptomics.[J]. International journal of molecular sciences. 2026. DOI: 10.3390/ijms27146537.
@article{c2026,
author = {Yi C and Zheng W and Zhao J and Cai W and Wang J and Song L and Bai M and Zhang Z},
title = {Ubiquitin-Related Proteostatic Programs in Cycling Fibroblast-Lineage Remodeling After Myocardial Ischemic Injury: A Hypothesis Informed by Single-Cell and Spatial Transcriptomics.},
journal = {International journal of molecular sciences},
year = {2026},
doi = {10.3390/ijms27146537},
note = {PMID: 42511877},
}
TY - JOUR AU - Yi C AU - Zheng W AU - Zhao J AU - Cai W AU - Wang J AU - Song L AU - Bai M AU - Zhang Z TI - Ubiquitin-Related Proteostatic Programs in Cycling Fibroblast-Lineage Remodeling After Myocardial Ischemic Injury: A Hypothesis Informed by Single-Cell and Spatial Transcriptomics. T2 - International journal of molecular sciences PY - 2026 DO - 10.3390/ijms27146537 AN - PMID:42511877 ER -
Myocardial ischemia and reperfusion initiate spatially organized injury-repair programs that subsequently shape ventricular remodeling. Although cardiac fibroblasts are indispensable for scar formation, single-cell and spatial transcriptomic studies reveal temporally dynamic and regionally distinct fibroblast-lineage states. This critical narrative review integrates direct evidence from myocardial ischemia-reperfusion (I/R) with model-labeled evidence from permanent myocardial infarction, clinically heterogeneous human infarction, fibroblast-specific ubiquitin biology, cell-cycle regulation, and cardiac fibroblast atlases. A direct fibroblast I/R study identifies an HSP47-USP10-SMAD4 deubiquitination axis, whereas most other fibroblast ubiquitin-proteasome system (UPS) mechanisms derive from permanent infarction, non-ischemic cardiac stress, or in vitro systems. We propose that CCNB1-associated, G2/M-enriched cycling fibroblast-lineage states may impose heightened proteostatic demands within defined post-ischemic niches. The conceptual novelty is not that CCNB1 turnover or UPS activity is cardiac-specific; both are general features of proliferating cells. Rather, the framework asks whether fibroblast lineage, injury-model provenance, anatomical niche, temporal window, cell state, and substrate-specific UPS nodes jointly define proteostatic dependencies during post-ischemic remodeling. RNA-based ubiquitin-related signatures remain transcriptional proxies and do not directly quantify ubiquitinated substrates, ubiquitin-chain topology, enzyme activity, or proteasome flux. Resolving the proposed relationships will require spatial colocalization, protein-level and ubiquitin-remnant profiling, proteasome and ribosome assays, fibroblast-specific perturbation, and validation in human infarct tissue.