Prolactin-induced neuroprotection against glutamate excitotoxicity is mediated by the reduction of [Ca2+]i overload and NF-κB activation.
Nadia A Rivero-SeguraEdgar Flores-SotoSelene García de la CadenaIsabel Coronado-MaresJuan C Gomez-VerjanDiana G FerreiraErika Alejandra Cabrera-ReyesLuísa V LopesLourdes MassieuMarco A CerbónPublished in: PloS one (2017)
Prolactin (PRL) is a peptidic hormone that displays pleiotropic functions in the organism including different actions in the brain. PRL exerts a neuroprotective effect against excitotoxicity produced by glutamate (Glu) or kainic acid in both in vitro and in vivo models. It is well known that Glu excitotoxicity causes cell death through apoptotic or necrotic pathways due to intracellular calcium ([Ca2+] i) overload. Therefore, the aim of the present study was to assess the molecular mechanisms by which PRL maintains cellular viability of primary cultures of rat hippocampal neurons exposed to Glu excitotoxicity. We determined cell viability by monitoring mitochondrial activity and using fluorescent markers for viable and dead cells. The intracellular calcium level was determined by a fluorometric assay and proteins involved in the apoptotic pathway were determined by immunoblot. Our results demonstrated that PRL afforded neuroprotection against Glu excitotoxicity, as evidenced by a decrease in propidium iodide staining and by the decrease of the LDH activity. In addition, the MTT assay shows that PRL maintains normal mitochondrial activity even in neurons exposed to Glu. Furthermore, the Glu-induced intracellular [Ca2+]i overload was attenuated by PRL. These data correlate with the reduction found in the level of active caspase-3 and the pro-apoptotic ratio (Bax/Bcl-2). Concomitantly, PRL elicited the nuclear translocation of the transcriptional factor NF-κB, which was detected by immunofluorescence and confocal microscopy. To our knowledge, this is the first report demonstrating that PRL prevents Glu excitotoxicity by a mechanism involving the restoration of the intracellular calcium homeostasis and mitochondrial activity, as well as an anti-apoptotic action possibly mediated by the activity of NF-κB. Overall, the current results suggest that PRL could be of potential therapeutic advantage in the treatment of neurodegenerative diseases.
Keyphrases
- cell death
- oxidative stress
- cell cycle arrest
- signaling pathway
- induced apoptosis
- cerebral ischemia
- anti inflammatory
- lps induced
- diabetic rats
- high glucose
- pi k akt
- gene expression
- brain injury
- spinal cord
- reactive oxygen species
- big data
- transcription factor
- endothelial cells
- endoplasmic reticulum stress
- mass spectrometry
- electronic health record
- single cell
- heat stress
- heat shock
- mouse model
- functional connectivity
- heat shock protein