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A novel pathway regulates thyroid hormone availability in rat and human hypothalamic neurosecretory neurons
- Source :
- PLoS ONE, PLoS ONE; Vol 7, PLoS ONE, Vol 7, Iss 6, p e37860 (2012)
- Publication Year :
- 2012
-
Abstract
- Hypothalamic neurosecretory systems are fundamental regulatory circuits influenced by thyroid hormone. Monocarboxylate-transporter-8 (MCT8)-mediated uptake of thyroid hormone followed by type 3 deiodinase (D3)-catalyzed inactivation represent limiting regulatory factors of neuronal T3 availability. In the present study we addressed the localization and subcellular distribution of D3 and MCT8 in neurosecretory neurons and addressed D3 function in their axons. Intense D3-immunoreactivity was observed in axon varicosities in the external zone of the rat median eminence and the neurohaemal zone of the human infundibulum containing axon terminals of hypophysiotropic parvocellular neurons. Immuno-electronmicroscopy localized D3 to dense-core vesicles in hypophysiotropic axon varicosities. N-STORM-superresolution-microscopy detected the active center containing C-terminus of D3 at the outer surface of these organelles. Double-labeling immunofluorescent confocal microscopy revealed that D3 is present in the majority of GnRH, CRH and GHRH axons but only in a minority of TRH axons, while absent from somatostatin-containing neurons. Bimolecular-Fluorescence-Complementation identified D3 homodimers, a prerequisite for D3 activity, in processes of GT1-7 cells. Furthermore, T3-inducible D3 catalytic activity was detected in the rat median eminence. Triple-labeling immunofluorescence and immuno-electronmicroscopy revealed the presence of MCT8 on the surface of the vast majority of all types of hypophysiotropic terminals. The presence of MCT8 was also demonstrated on the axon terminals in the neurohaemal zone of the human infundibulum. The unexpected role of hypophysiotropic axons in fine-tuned regulation of T3 availability in these cells via MCT8-mediated transport and D3-catalyzed inactivation may represent a novel regulatory core mechanism for metabolism, growth, stress and reproduction in rodents and humans.
- Subjects :
- Male
Anatomy and Physiology
lcsh:Medicine
Fluorescent Antibody Technique
Biochemistry
Transmembrane Transport Proteins
0302 clinical medicine
Molecular Cell Biology
Axon
lcsh:Science
Neurons
0303 health sciences
Multidisciplinary
biology
Reverse Transcriptase Polymerase Chain Reaction
Orvostudományok
Animal Models
Immunohistochemistry
Cell biology
Enzymes
medicine.anatomical_structure
Somatostatin
Hypothalamus
Median eminence
Cellular Types
Research Article
medicine.medical_specialty
Thyroid Hormones
Deiodinase
030209 endocrinology & metabolism
Endocrine System
Neuroendocrinology
Klinikai orvostudományok
Infundibulum
03 medical and health sciences
Model Organisms
Internal medicine
medicine
Animals
Humans
Rats, Wistar
Biology
030304 developmental biology
Endocrine Physiology
lcsh:R
Proteins
Axons
Hormones
Rats
Endocrinology
nervous system
Axoplasmic transport
biology.protein
Rat
lcsh:Q
Subjects
Details
- ISSN :
- 19326203
- Volume :
- 7
- Issue :
- 6
- Database :
- OpenAIRE
- Journal :
- PloS one
- Accession number :
- edsair.doi.dedup.....88b857dbb27c36c588c7f3837b94210f