Soft x-ray tomography reveals gradual chromatin compaction and reorganization during neurogenesis in vivo
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Summary
Soft X-ray Tomography is used to image chromatin organization, distribution and biophysical properties during neurogenesis in vivo to reveal that chromatin with similar biophysical properties forms an elaborate connected network throughout the entire nucleus.
- Type
- article
- Published
- 2016-11-01
- Cited by
- 107
- References
- 75
- Access
- Open access
- OpenAlex
- https://openalex.org/W27851973
- Semantic Scholar
- https://api.semanticscholar.org/CorpusID:16815881
Keywords
Computer science
References
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Cited by
- Quantitative Distribution of DNA, RNA, Histone and Proteins Other than Histone in Mammalian Cells, Nuclei and a Chromosome at High Resolution Observed by Scanning Transmission Soft X-Ray Microscopy (STXM)
- The International Human Epigenome Consortium: A Blueprint for Scientific Collaboration and Discovery.
- The 4D Nucleome Project
- Quadratic grating apodized photon sieves for simultaneous multiplane microscopy
- Chromatin organization regulates viral egress dynamics
- Integrative modelling of cellular assemblies
- Challenges for visualizing three‐dimensional data in genomic browsers
- CATaDa reveals global remodelling of chromatin accessibility during stem cell differentiation in vivo
- Laboratory cryo x-ray microscopy for 3D cell imaging
- The emerging roles for the chromatin structure regulators CTCF and cohesin in neurodevelopment and behavior
- Expanding horizons of cryo-tomography to larger volumes.
- Cell type-specific interchromosomal interactions as a mechanism for transcriptional diversity
- Chromatin Regulation of Neuronal Maturation and Plasticity
- Cryo-soft X-ray tomography: using soft X-rays to explore the ultrastructure of whole cells
- PSF correction in soft x-ray tomography
- Quantitative analysis of mammalian chromosome by scanning transmission soft X-ray microscopy.
- A comparison of absorption and phase contrast for X-ray imaging of biological cells
- QUANTITATIVE STUDY ON REGULATORY MECHANISMS OF CELL PHENOTYPE TRANSITION
- Across the spectrum: integrating multidimensional metal analytics for in situ metallomic imaging
- Regulation of Chromatin Structure During Neural Development
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