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Postmortem stability of melatonin receptor binding and clock-relevant mRNAs in mouse suprachiasmatic nucleus
1Laboratory of Developmental Chronobiology, MassGeneral Hospital for Children, Boston, MA 02114, USA. DavidWeaver@umassmed.edu
Abstract:
The stability of receptor proteins and mRNAs in brain tissue is variable after death. As a prelude to quantitative studies of melatonin receptor density and clock gene expression in the human brain, the stability of these macromolecules was examined in the mouse brain under simulated postmortem conditions using the model of Spokes and Koch. In the mouse suprachiasmatic nucleus (SCN), melatonin receptor binding was significantly reduced after 18 to 24 h under postmortem conditions. Two mRNAs that are rhythmically expressed in the SCN, mPer1 and prepropressophysin (AVP), also decreased significantly over the interval studied, and mPer1 declined more rapidly than AVP. Both mPer1 and AVP mRNA levels in the SCN declined more rapidly in vivo than under postmortem conditions, suggesting that the degradation of these mRNAs is an active process. The results indicate that quantitative studies of melatonin receptor density on human postmortem material are feasible and that detection of rhythmic gene expression in the human SCN will likely require collection of specimens with a rather short (< 8 h) interval from death to tissue collection. The relative stability of melatonin receptor binding in the SCN also suggests that receptor binding may be a reliable marker for the location of the SCN in studies assessing clock gene expression in postmortem material.
Insights
Postmortem brain tissue stability varies. Melatonin receptor binding is feasible for human studies, but clock gene expression requires rapid (<8h) tissue collection to detect rhythmic patterns.
Area of Science:
- Neuroscience
- Chronobiology
- Molecular Biology
Background:
- Postmortem stability of brain macromolecules like proteins and mRNAs is crucial for research.
- Understanding degradation rates is essential for accurate analysis of human brain tissue.
Purpose of the Study:
- To assess the stability of melatonin receptors and clock gene mRNAs in mouse brain under simulated postmortem conditions.
- To inform quantitative studies on human postmortem brain tissue.
Main Methods:
- Utilized the Spokes and Koch model for simulated postmortem conditions in mouse brains.
- Examined melatonin receptor binding and mRNA levels (mPer1, AVP) in the suprachiasmatic nucleus (SCN).
Main Results:
- Melatonin receptor binding in the SCN significantly decreased after 18-24 hours postmortem.
- Rhythmically expressed mRNAs (mPer1, AVP) also declined, with mPer1 degrading faster than AVP.
- mRNA degradation was faster in vivo than postmortem, indicating an active process.
Conclusions:
- Quantitative studies of melatonin receptor density in human postmortem brain are feasible.
- Detecting rhythmic gene expression in the human SCN necessitates rapid tissue collection (<8 hours).
- Melatonin receptor binding serves as a reliable marker for SCN location in postmortem studies.