Comparative single-cell multiomic analysis reveals evolutionarily conserved and species-specific cellular mechanisms mediating natural retinal aging.
Lyu, P.; Palazzo, I.; jin, y.; Campbell, L.; Santiago, C.; Carmen-Orzoco, R.; Hoang, T.; Tangeman, J.; Park, A.; Yang, S.; Shao, J.; Chen, R.; Hyde, D.; Qian, J.; Blackshaw, S.
Show abstract
Biological age is a major risk factor in the development of common degenerative retinal diseases such as age-related macular degeneration and glaucoma. To systematically characterize molecular mechanisms underlying retinal aging, we performed integrated single- cell RNA- and ATAC-Seq analyses of the retina and retinal pigment epithelium (RPE) across the natural lifespan in zebrafish, mice, and humans. By profiling gene expression and chromatin accessibility, we identified extensive cell type- and species-specific aging-dependent changes, with a much smaller number of broadly expressed and conserved genes that include regulators of inflammation and autophagy. We constructed predictive aging clocks for retinal cell types and observed dynamic, reversible shifts in cellular age following acute injury. Spatial transcriptomic analysis revealed region-specific aging signatures and proximity effects, with Muller glia exhibiting pro-rejuvenating influences on neighboring neurons. Targeted Muller glia-specific induction of Yamanaka factors reduced molecular age in rod photoreceptors and bipolar cells without altering glial age. Our findings define conserved and divergent regulatory and signaling pathways mediating retinal aging, highlighting Muller glia as potential therapeutic targets for combating age-associated retinal dystrophies.
Matching journals
The top 4 journals account for 50% of the predicted probability mass.
Similar papers in this journal
- Spatiotemporal analysis of gene expression in the human dentate gyrus reveals age-associated changes in cellular maturation and neuroinflammation 96%
- Single-Cell Epigenomics Uncovers Heterochromatin Instability and Transcription Factor Dysfunction during Mouse Brain Aging 96%
- Defining the age-dependent and tissue-specific circadian transcriptome in male mice 95%
Similar papers in this journal
- Microglia aging in the hippocampus advances through intermediate states that drive activation and cognitive decline 98%
- The Neuron-specific IIS/FOXO Transcriptome in Aged Animals Reveals Regulatory Mechanisms of Neuronal and Cognitive Aging 97%
- Pan-tissue Transcriptome Analysis Reveals Sex-dimorphic Human Aging 97%
Similar papers in this journal
- Three-dimensional chromatin re-organization during muscle stem cell aging 97%
- Aging-related cell type-specific pathophysiologic immune responses that exacerbate disease severity in aged COVID-19 patients 96%
- Alterations of the gut microbiome are associated with epigenetic age acceleration and physical fitness 95%
"Similar papers" are the closest papers from that journal in the model's embedding space. They show what the match is built on, but the ranking comes mostly from a classifier over the whole training set, not from these examples alone.