Wendy Bickmore British genome biologist
Bickmore, Wendy.
Bickmore, Wendy, 1961-....
Bickmore, Wendy Anne
Bickmore, Wendy A.
VIAF ID: 51844347 (Personal)
Permalink: http://viaf.org/viaf/51844347
Preferred Forms
- 200 _ | ‡a Bickmore ‡b Wendy ‡f 1961-....
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- 100 1 _ ‡a Bickmore, Wendy
- 100 1 0 ‡a Bickmore, Wendy
- 100 1 _ ‡a Bickmore, Wendy A.
- 100 1 _ ‡a Bickmore, Wendy Anne
- 100 1 _ ‡a Bickmore, Wendy ‡d 1961-...
- 100 1 _ ‡a Bickmore, Wendy, ‡d 1961-....
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- 100 0 _ ‡a Wendy Bickmore ‡c British genome biologist
4xx's: Alternate Name Forms (14)
Works
Title | Sources |
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Analysis of the role of nuclear organization during random X chromosome inactivation | |
Assessing the links between enhancer-promoter proximity, local chromatin dynamics and gene activity | |
Chromosomal architecture of the Xic locus : implications for the regulation of X chromosome inactivation. | |
Chromosome bands : patterns in the genome | |
Chromosome structural analysis : a practical approach | |
Developmental timing in Dictyostelium is regulated by the Set1 histone methyltransferase. | |
Dispatch. Chromosome position: now, where was I? | |
The distribution of CpG islands in mammalian chromosomes | |
Divergence of mammalian higher order chromatin structure is associated with developmental loci | |
DNA Methylation Directs Polycomb-Dependent 3D Genome Re-organization in Naive Pluripotency | |
The E3 ubiquitin ligase activity of RING1B is not essential for early mouse development. | |
Ectopic nuclear reorganisation driven by a Hoxb1 transgene transposed into Hoxd | |
Editorial overview: Genome architecture and expression | |
The effect of translocation-induced nuclear reorganization on gene expression | |
The effects of histone deacetylase inhibitors on heterochromatin: implications for anticancer therapy? | |
Enhancer Turnover Is Associated with a Divergent Transcriptional Response to Glucocorticoid in Mouse and Human Macrophages | |
Enhancers: five essential questions | |
Enhancers: from developmental genetics to the genetics of common human disease. | |
Epigenetics : special review issue | |
Fine-mapping and cell-specific enrichment at corneal resistance factor loci prioritize candidate causal regulatory variants | |
The frequent evolutionary birth and death of functional promoters in mouse and human | |
From bedside to bench | |
G9a histone methyltransferase contributes to imprinting in the mouse placenta | |
Gene density and transcription influence the localization of chromatin outside of chromosome territories detectable by FISH. | |
Genome architecture: domain organization of interphase chromosomes | |
Genomics: ENCODE explained | |
Glucocorticoid Receptor Binding Induces Rapid and Prolonged Large-Scale Chromatin Decompaction at Multiple Target Loci | |
H4K16 acetylation marks active genes and enhancers of embryonic stem cells, but does not alter chromatin compaction | |
The Hierarchy of Transcriptional Activation: From Enhancer to Promoter | |
Histone H2A mono-ubiquitination is a crucial step to mediate PRC1-dependent repression of developmental genes to maintain ES cell identity | |
Histone H3 globular domain acetylation identifies a new class of enhancers | |
A Hox-Embedded Long Noncoding RNA: Is It All Hot Air? | |
Human cord blood-derived cells can differentiate into hepatocytes in the mouse liver with no evidence of cellular fusion | |
Influences of chromosome size, gene density and nuclear position on the frequency of constitutional translocations in the human population | |
The ins and outs of gene regulation and chromosome territory organisation | |
KRAB zinc-finger proteins localise to novel KAP1-containing foci that are adjacent to PML nuclear bodies. | |
Lack of bystander activation shows that localization exterior to chromosome territories is not sufficient to up-regulate gene expression | |
Mammalian PRP4 kinase copurifies and interacts with components of both the U5 snRNP and the N-CoR deacetylase complexes | |
Modélisation, visualisation et quantification de la dynamique d'extrusion de boucle de chromatine en cellules humaines vivantes. | |
Models of DNA replication timing in interphase nuclei: an exercise in inferring process from state. | |
MUC4 is not expressed in cell lines used for live cell imaging | |
Mutations in TOPORS cause autosomal dominant retinitis pigmentosa with perivascular retinal pigment epithelium atrophy | |
Nuclear organisation and replication timing are coupled through RIF1-PP1 interaction | |
Nuclear organization of centromeric domains is not perturbed by inhibition of histone deacetylases. | |
Nuclear organization of the genome and the potential for gene regulation | |
Nuclear re-organisation of the Hoxb complex during mouse embryonic development. | |
Nuclear reorganisation and chromatin decondensation are conserved, but distinct, mechanisms linked to Hox gene activation. | |
An Overview of Genome Organization and How We Got There: from FISH to Hi-C | |
PARP mediated chromatin unfolding is coupled to long-range enhancer activation | |
Perturbations of chromatin structure in human genetic disease: recent advances. | |
Polycomb enables primitive endoderm lineage priming in embryonic stem cells | |
Polycomb-mediated chromatin compaction weathers the STORM. | |
Porin new light onto chromatin and nuclear organization | |
PRC1 and PRC2 are not required for targeting of H2A.Z to developmental genes in embryonic stem cells | |
PRC1 Fine-tunes Gene Repression and Activation to Safeguard Skin Development and Stem Cell Specification. | |
PRC2-independent chromatin compaction and transcriptional repression in cancer | |
Proximité entre promoteur et enhancer et l’étude de leurs propriétés de diffusion au cours de la transcription. | |
Psip1/Ledgf p52 binds methylated histone H3K36 and splicing factors and contributes to the regulation of alternative splicing | |
Psip1/Ledgf p75 restrains Hox gene expression by recruiting both trithorax and polycomb group proteins. | |
Psip1/p52 regulates posterior Hoxa genes through activation of lncRNA Hottip | |
The radial positioning of chromatin is not inherited through mitosis but is established de novo in early G1. | |
Recruitment to the nuclear periphery can alter expression of genes in human cells | |
Redistribution of H3K27me3 upon DNA hypomethylation results in de-repression of Polycomb target genes | |
Reed-Sternberg cells form by abscission failure in the presence of functional Aurora B kinase | |
Regional chromatin decompaction in Cornelia de Lange syndrome associated with NIPBL disruption can be uncoupled from cohesin and CTCF. | |
Regulation from a distance: long-range control of gene expression in development and disease | |
Regulatory Domains and Their Mechanisms | |
The relationship between higher-order chromatin structure and transcription | |
Repo-Man/PP1 regulates heterochromatin formation in interphase. | |
The role of chromatin structure in regulating the expression of clustered genes. | |
Role of PSIP1/LEDGF/p75 in lentiviral infectivity and integration targeting | |
S05-01. Polycomb repressive complexes are required to maintain compact chromatin structure at Hox loci | |
SBE6: a novel long-range enhancer involved in driving sonic hedgehog expression in neural progenitor cells | |
Sealed with a X. | |
Shh and ZRS enhancer colocalisation is specific to the zone of polarising activity | |
Single-cell dynamics of genome-nuclear lamina interactions | |
The SOD1 transgene in the G93A mouse model of amyotrophic lateral sclerosis lies on distal mouse chromosome 12 | |
Spatial genome organization: contrasting views from chromosome conformation capture and fluorescence in situ hybridization | |
Stable morphology, but dynamic internal reorganisation, of interphase human chromosomes in living cells | |
A TAD Closer to Understanding Dosage Compensation. | |
Transcription and the nuclear periphery: edge of darkness? | |
Transcription factories: gene expression in unions? | |
Transcription. Flashing a light on the spatial organization of transcription | |
Unusual chromosome architecture and behaviour at an HSR | |
Visualizing the Spatial Relationships between Defined DNA Sequences and the Axial Region of Extracted Metaphase Chromosomes |