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Association of thyroid hormone receptors with chromatin
Abstract:
A large body of circumstantial evidence indicates that receptors located in nuclei of T3 responsive tissues represent a site of initiation of thyroid hormone action at the cellular level. Partial characterization of T3 receptors indicates that these proteins are monomeric structures in nuclei and are chromatin-associated non-histone proteins. Treatment of rat liver nuclei with either pancreatic DNase I or micrococcal nuclease releases T3 receptors from nuclei in two forms: a predominant (95 400 Mr; 5.5-6.0S) and a minor (265 000-365 000 Mr; 12.5S) nucleoprotein complex. Similar structures are excised from rat kidney, brain, and heart nuclei and from GH1 pituitary cell nuclei by micrococcal nuclease digestion. These endonuclease-excised receptor-containing complexes are significantly larger than the salt-extracted receptor (50 000 Mr; 3.5S). The presence of DNA and other non-receptor proteins in these structures indicates that T3 receptors probably function within multimeric complexes in vivo. Although T3 receptors appear to be associated with DNA between nucleosomes, i.e. linker DNA, it is not entirely clear whether all or only a fraction of T3 receptors interact with nucleosomal components. The 12.5S receptor-containing nucleoprotein complex may represent T3 receptors in association with linker DNA and nucleosomal components. T3 receptors do not appear to be uniformly distributed to all chromatin fractions, but are associated with structures having characteristics of transcriptionally active chromatin. They are found in a region of chromatin which is enriched in RNA polymerase activity, rapidly labeled RNA and non-histone proteins, and depleted of histone Hl. This region is also highly sensitive to both micrococcal nuclease and pancreatic DNase I digestion. The association of receptors with transcriptionally active chromatin, however, must be considered provisional until additional details of the precise receptor-chromatin interaction have been established. The recent demonstration of a 20-fold increase in a specific hepatic mRNA four hours following administration of T3 to hypothyroid rats indicates that thyroid hormone potentially has very rapid effects on hepatic gene expression. However, significant changes in nuclear protein phosphorylation, nuclear protein composition, and chromatin structure have not been detected within this four-hour period. Thus, effects of T3 on hepatic gene expression are brought about by local and presumably subtle changes in nuclear function.
Insights
Thyroid hormone (T3) receptors are non-histone proteins found in cell nuclei, associated with transcriptionally active chromatin. These receptors likely function in multimeric complexes, initiating thyroid hormone action at the cellular level.
Area of Science:
- Molecular Endocrinology
- Cell Biology
- Genetics
Background:
- Thyroid hormone action is initiated at the cellular level by receptors within cell nuclei.
- Thyroid hormone receptors (T3 receptors) are chromatin-associated, non-histone proteins.
Purpose of the Study:
- To characterize the molecular nature and cellular localization of thyroid hormone receptors.
- To investigate the in vivo functional state of T3 receptors within the nucleus.
Main Methods:
- Rat liver nuclei were treated with DNase I and micrococcal nuclease to release T3 receptors.
- Characterization of released nucleoprotein complexes using size and sedimentation analysis.
- Analysis of receptor association with specific chromatin fractions.
Main Results:
- T3 receptors were released from nuclei in two distinct nucleoprotein complexes (95,400 Mr; 5.5-6.0S and 265,000-365,000 Mr; 12.5S).
- These complexes are significantly larger than salt-extracted receptors (50,000 Mr; 3.5S), indicating association with DNA and other proteins.
- T3 receptors are preferentially associated with transcriptionally active chromatin regions, rich in RNA polymerase and non-histone proteins.
Conclusions:
- T3 receptors likely function as part of larger multimeric complexes within the nucleus.
- Receptor association with transcriptionally active chromatin suggests a role in regulating gene expression.
- Thyroid hormone may exert rapid effects on gene expression through subtle changes in nuclear function.