ArticleExperimental eye research2018
A comprehensive spatial-temporal transcriptomic analysis of differentiating nascent mouse lens epithelial and fiber cells.
Article in Experimental eye research, 2018. The graph could read no effect estimate from its abstract, so it casts no vote on the map. Cited by 42 papers, 1 of them a synthesis that pooled it.
What it found
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The abstract states no effect estimate the extractor could read, or names no intervention and outcome on the map, so this paper lights no cell and moves no belief. It is still indexed, cited and linked below.
The trial behind it
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Who cites it
42 citing papers in PubMed, 1 synthesis or guideline pooled it, 51 citations in OpenAlex.
- Transcriptome Meta-Analysis Uncovers Cell-Specific Regulatory Relationships in Embryonic, Juvenile, Adult, and Aged Mouse Lens Epithelium and Fibers.Investigative ophthalmology & visual science · 2025Pooled it
- RNA-binding proteins in the mouse lens: Functional classifications, expression profiling, and interaction studies of Carhsp1 with crystallin mRNAs.Developmental biology · 2026Article
- RNA sequencing and bioinformatics analysis of blood from patients with cortical cataracts.BMC ophthalmology · 2026Article
- Lens epithelial cells senescence in cataract pathogenesis and emerging therapeutic opportunities.Frontiers in cell and developmental biology · 2026Review
- The 3D Genome Structure of a Blcap-Linked Silencer Loop Regulates Terminal Differentiation During Lens Fiber Cell Denucleation.Investigative ophthalmology & visual science · 2025Article
- Hypoxia-Driven Histone Modifications Govern Gene Regulation for Mature Eye Lens Formation.Investigative ophthalmology & visual science · 2025Article
- Artificial Intelligence in Ocular Transcriptomics: Applications of Unsupervised and Supervised Learning.Cells · 2025Review
- Whole Exome Sequencing Study Uncovers Novel Candidate Genes and Protein-Coding Variants for Cataract.Investigative ophthalmology & visual science · 2025Article
- Lens Regeneration: The Application of iSyTE and In Silico Approaches to Evaluate Gene Expression in Lens Organoids.Methods in molecular biology (Clifton, N.J.) · 2025Article
- Analysis of long-range chromatin contacts, compartments and looping between mouse embryonic stem cells, lens epithelium and lens fibers.Epigenetics & chromatin · 2024Article
- A Cataract-Causing Mutation in the TRPM3 Cation Channel Disrupts Calcium Dynamics in the Lens.Cells · 2024Article
- Integrated single-cell multiomics uncovers foundational regulatory mechanisms of lens development and pathology.Development (Cambridge, England) · 2024Article
- Multi-tissue transcriptome-wide association study identifies novel candidate susceptibility genes for cataract.Frontiers in ophthalmology · 2024Article
- Integrative transcriptomic profiling of ncRNAs and mRNAs in developing mouse lens.Frontiers in genetics · 2024Article
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- Multiomics Analysis Reveals Novel Genetic Determinants for Lens Differentiation, Structure, and Transparency.Biomolecules · 2023Review
- High-Throughput Transcriptomics ofCells · 2023Article
- Article
- Dynamic changes in whole genome DNA methylation, chromatin and gene expression during mouse lens differentiation.Epigenetics & chromatin · 2023Article
Corrections and comments
PubMed lists nothing against this paper. Absence here is not a guarantee, only a check that was made.
Authors and funding
3 authors at 1 institution in 2 countries.
Funding
Abstract
Elucidation of both the molecular composition and organization of the ocular lens is a prerequisite to understand its development, function, pathology, regenerative capacity, as well as to model lens development and disease using in vitro differentiation of pluripotent stem cells. Lens is comprised of the anterior lens epithelium and posterior lens fibers, which form the bulk of the lens. Lens fibers differentiate from lens epithelial cells through cell cycle exit-coupled differentiation that includes cellular elongation, accumulation of crystallins, cytoskeleton and membrane remodeling, and degradation of organelles within the central region of the lens. Here, we profiled spatiotemporal expression dynamics of both mRNAs and non-coding RNAs from microdissected mouse nascent lens epithelium and lens fibers at four developmental time points (embryonic [E] day 14.5, E16.5, E18.5, and P0.5) by RNA-seq. During this critical time window, multiple complex biosynthetic and catabolic processes generate the molecular and structural foundation for lens transparency. Throughout this developmental window, 3544 and 3518 genes show consistently and significantly greater expression in the nascent lens epithelium and fibers, respectively. Comprehensive data analysis confirmed major roles of FGF-MAPK, Wnt/β-catenin, PI3K/AKT, TGF-β, and BMP signaling pathways and revealed significant novel contributions of mTOR, EIF2, EIF4, and p70S6K signaling in lens formation. Unbiased motif analysis within promoter regions of these genes with consistent expression changes between epithelium and fiber cells revealed an enrichment for both established (e.g. E2Fs, Etv5, Hsf4, c-Maf, MafG, MafK, N-Myc, and Pax6) transcription factors and a number of novel regulators of lens formation, such as Arntl2, Dmrta2, Stat5a, Stat5b, and Tulp3. In conclusion, the present RNA-seq data serves as a comprehensive reference resource for deciphering molecular principles of normal mammalian lens differentiation, mapping a full spectrum of signaling pathways and DNA-binding transcription factors operating in both lens compartments, and predicting novel pathways required to establish lens transparency.
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Registered trials
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