Chromosome Conformation Capture Carbon Copy (5C): A massively parallel solution for mapping interactions between genomic elements is a research paper published in Genome Research (2006). On theSindex it has a DataRank of 1.1. It has been cited 1,231 times.
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Base Score Contribution
1.1
From this paper's citation signal
Citation Network Contribution
0
Citation network not refreshed for this result
This paper's DataRank is currently driven only by its base citation score. Citation network data was not refreshed for this result.
Learn more about DataRank methodology →National Institutes of Health
Grant: 1R01GM078986-01
Evolutionary Graph Theory and Its Applications
National Institutes of Health
Grant: 5R01CA109597-04
Chromatin Insulator Function at the C-myc Gene
National Institutes of Health
Grant: 5R01HG003143-13
Structural Annotation of the Human Genome
National Institutes of Health
Grant: 5R01HG003129-03
Discovery of Binding Sites for Transcription Factors
Fields of Study
MeSH Terms
Keywords
Additional file 1 of MHiC, an integrated user-friendly tool for the identification and visualization of significant interactions in Hi-C data
Additional file 1 of MHiC, an integrated user-friendly tool for the identification and visualization of significant interactions in Hi-C data
Additional file 2 of MHiC, an integrated user-friendly tool for the identification and visualization of significant interactions in Hi-C data
Additional file 2 of MHiC, an integrated user-friendly tool for the identification and visualization of significant interactions in Hi-C data
Additional file 1 of Tandem CTCF sites function as insulators to balance spatial chromatin contacts and topological enhancer-promoter selection
Additional file 1 of Tandem CTCF sites function as insulators to balance spatial chromatin contacts and topological enhancer-promoter selection
Additional file 2 of Tandem CTCF sites function as insulators to balance spatial chromatin contacts and topological enhancer-promoter selection
Additional file 2 of Tandem CTCF sites function as insulators to balance spatial chromatin contacts and topological enhancer-promoter selection
Additional file 3 of Tandem CTCF sites function as insulators to balance spatial chromatin contacts and topological enhancer-promoter selection
Additional file 3 of Tandem CTCF sites function as insulators to balance spatial chromatin contacts and topological enhancer-promoter selection
Additional file 1 of HiCoP, a simple and robust method for detecting interactions of regulatory regions
Additional file 1 of HiCoP, a simple and robust method for detecting interactions of regulatory regions
Additional file 1 of An intriguing characteristic of enhancer-promoter interactions
Additional file 1 of An intriguing characteristic of enhancer-promoter interactions
Additional file 1 of DeTOKI identifies and characterizes the dynamics of chromatin TAD-like domains in a single cell
Additional file 1 of DeTOKI identifies and characterizes the dynamics of chromatin TAD-like domains in a single cell
Additional file 2 of DeTOKI identifies and characterizes the dynamics of chromatin TAD-like domains in a single cell
Additional file 2 of DeTOKI identifies and characterizes the dynamics of chromatin TAD-like domains in a single cell
Additional file 6 of DeTOKI identifies and characterizes the dynamics of chromatin TAD-like domains in a single cell
Additional file 6 of DeTOKI identifies and characterizes the dynamics of chromatin TAD-like domains in a single cell