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Melatonin influence on miRNA expression in sperm, hypothalamus, pre-frontal cortex and cerebellum of Wistar rats
Mísia Helena da Silva Ferro1, Ingrid Morante1, Fernanda Akane Nishino2
1Laboratory of Developmental Biology, Department of Morphology and Genetics-Paulista Medicine School, Federal University of Sao Paulo (UNIFESP), Sao Paulo, SP, Brazil.
Abstract:
Melatonin is a pineal hormone synthesized exclusively at night, in several organisms. Its action on sperm is of particular interest, since they transfer genetic and epigenetic information to the offspring, including microRNAs, configuring a mechanism of paternal epigenetic inheritance. MicroRNAs are known to participate in a wide variety of mechanisms in basically all cells and tissues, including the brain and the sperm cells, which are known, respectively, to present 70% of all identified microRNAs and to transfer these molecules to the embryo. MicroRNAs from sperm have been associated with modulation of embryonic development and inheritance of psychiatric symptoms, including autism. Given that microRNAs and melatonin are ubiquitous molecules with important roles in the organism, the aim of this study was to investigate the expression of specific microRNAs in sperm, brain and cerebellum of pinealectomized rats. For this study, Wistar rats had their pineal gland removed at 60 post-partum. Part of these rats received exogenous melatonin until the day of the euthanasia. The control group did not receive any treatment or manipulation. The sperm, hypothalamus, prefrontal cortex and cerebellum were collected for analysis of microRNA expression by RT-qPCR. The results suggest that melatonin absence caused by pinealectomy increases the expression of the target microRNAs in the sperm. Although the data suggest an alteration (increase or decrease depending on the region and microRNA) of expression levels of some microRNAs in the brain and cerebellum of pinealectomized rats, the differences were not statistically significant. This seems to be a consequence of the intragroup variation. Melatonin administration restored the levels of the target microRNAs in the sperm. Additional studies are needed to understand the impact of the alterations of microRNA expression to the pinealectomized rats as well as to their descendants.
Insights
Melatonin absence increased microRNAs in rat sperm, potentially impacting paternal inheritance. Melatonin treatment restored normal microRNA levels in sperm.
Area of Science:
- Endocrinology
- Epigenetics
- Neuroscience
Background:
- Melatonin is a nocturnal hormone crucial for various biological processes.
- Sperm transmit genetic and epigenetic information, including microRNAs, to offspring.
- Sperm microRNAs influence embryonic development and can be linked to inherited conditions.
Purpose of the Study:
- To investigate the effect of melatonin absence on microRNA expression in rat sperm and brain.
- To assess the role of the pineal gland in regulating microRNA levels.
- To determine if exogenous melatonin can reverse observed changes.
Main Methods:
- Pinealectomy was performed on Wistar rats at 60 days postpartum.
- Groups included pinealectomized rats (with or without melatonin treatment) and a control group.
- MicroRNA expression in sperm, hypothalamus, prefrontal cortex, and cerebellum was analyzed using RT-qPCR.
Main Results:
- Melatonin absence significantly increased specific microRNA expression in sperm.
- Alterations in brain and cerebellum microRNA levels were observed but not statistically significant.
- Melatonin administration normalized microRNA levels in the sperm of treated rats.
Conclusions:
- Pinealectomy and melatonin absence alter microRNA expression in rat sperm.
- Melatonin plays a role in regulating microRNA levels in sperm, suggesting a link to paternal epigenetic inheritance.
- Further research is needed to understand the long-term consequences for offspring.
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