The end adjusts the means: Heterochromatin remodelling during terminal cell differentiation
- 1 February 2006
- journal article
- review article
- Published by Springer Nature in Chromosome Research
- Vol. 14 (1) , 53-69
- https://doi.org/10.1007/s10577-005-1021-6
Abstract
All cells that constitute mature tissues in an eukaryotic organism undergo a multistep process of cell differentiation. At the terminal stage of this process, cells either cease to proliferate forever or rest for a very long period of time. During terminal differentiation, most of the genes that are required for cell ‘housekeeping’ functions, such as proto-oncogenes and other cell-cycle and cell proliferation genes, become stably repressed. At the same time, nuclear chromatin undergoes dramatic morphological and structural changes at the higher-order levels of chromatin organization. These changes involve both constitutively inactive chromosomal regions (constitutive heterochromatin) and the formerly active genes that become silenced and structurally modified to form facultative heterochromatin. Here we approach terminal cell differentiation as a unique system that allows us to combine biochemical, ultrastructural and molecular genetic techniques to study the relationship between the hierarchy of chromatin higher-order structures in the nucleus and its function(s) in dynamic packing of genetic material in a form that remains amenable to regulation of gene activity and other DNA-dependent cellular processes.Keywords
This publication has 118 references indexed in Scilit:
- Chromatin architectural proteinsChromosome Research, 2006
- The reorganisation of constitutive heterochromatin in differentiating muscle requires HDAC activityExperimental Cell Research, 2005
- X-ray structure of a tetranucleosome and its implications for the chromatin fibreNature, 2005
- RNA interference demonstrates a novel role for H2A.Z in chromosome segregationNature Structural & Molecular Biology, 2004
- Physical Properties of a Genomic Condensed Chromatin FragmentJournal of Molecular Biology, 2004
- The structure of DNA in the nucleosome coreNature, 2003
- Translating the Histone CodeScience, 2001
- New DNA sequence rules for high affinity binding to histone octamer and sequence-directed nucleosome positioningJournal of Molecular Biology, 1998
- Hybrid Trypsinized Nucleosomal Arrays: Identification of Multiple Functional Roles of the H2A/H2B and H3/H4 N-Termini in Chromatin Fiber CompactionBiochemistry, 1997
- Sites of in vivo phosphorylation of histone H5Biochemistry, 1978