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Published on: April 13, 2017
Microglial regulation of cholinergic differentiation in the basal forebrain
G Miller Jonakait1, Lorelei Pratt, Giselles Acevedo
1Federated Department of Biological Sciences, New Jersey Institute of Technology, Newark, New Jersey, USA. jonakait@andromeda.rutgers.edu
Abstract:
Because inflammation during pregnancy can lead to neurodevelopmental anomalies, we investigated the role of inflamed microglia on cholinergic precursors in the rat embryonic basal forebrain (BF) cultured on embryonic day 15. Conditioned medium (CM) taken from microglia stimulated variously (microglial CM; MCM) increased activity of choline acetyltransferase (ChAT), the enzyme responsible for acetylcholine biosynthesis and a phenotypic hallmark of the cholinergic neuron. There was a concomitant decline in glutamic acid decarboxylase expression. Of stimulators tested, only β-amyloid failed to produce effective MCM. Infection with a Lac-Z-containing retrovirus revealed that MCM promoted cholinergic differentiation from undifferentiated precursors in the population. Several candidates were tested for their ability to mimic MCM. Mature nerve growth factor (NGF) did not mimic MCM, but acted synergistically with it to promote enormous increases in ChAT activity. However, a microglial cell line produced high-molecular weight forms of NGF (pro-NGF) that were lethal to mature cholinergic neurons. Although bone morphogenetic proteins (BMP) 2, 4, and 9 increased ChAT activity dose-dependently, noggin did not inhibit the effects of the MCM, suggesting that BMPs were not the only active factor(s) in the MCM. Embryonic microglia isolated following maternal inflammation produced a variety of immune system cytokines and chemokines. One of these, interleukin-6 (IL-6), was tested for its ability to promote cholinergic differentiation. Although IL-6 alone did not mimic the action of MCM, neutralization of it inhibited MCM effectiveness. Thus, following maternal inflammation, a complex microglial-derived cocktail of factors can promote excess cholinergic differentiation in the embryonic BF.
Insights
Maternal inflammation during pregnancy can alter brain development. Inflamed microglia release factors that promote excessive cholinergic neuron differentiation in the embryonic basal forebrain, potentially impacting neurodevelopment.
Area of Science:
- Neuroscience
- Developmental Biology
- Neuroinflammation
Background:
- Inflammation during pregnancy is linked to neurodevelopmental anomalies.
- Microglia, the immune cells of the brain, play a role in neurodevelopment.
- Cholinergic neurons are crucial for cognitive functions.
Purpose of the Study:
- To investigate the effect of inflamed microglia on cholinergic precursors in the embryonic basal forebrain.
- To identify factors released by microglia that influence cholinergic differentiation.
- To understand the implications of maternal inflammation on fetal brain development.
Main Methods:
- Culturing rat embryonic basal forebrain (BF) on embryonic day 15.
- Stimulating microglia and collecting conditioned medium (MCM).
- Assessing choline acetyltransferase (ChAT) activity and gene expression.
- Testing candidate factors like NGF, BMPs, and IL-6.
Main Results:
- Microglial conditioned medium (MCM) increased ChAT activity and promoted cholinergic differentiation.
- Beta-amyloid did not produce effective MCM, while mature NGF synergized with MCM.
- Pro-NGF was lethal to mature cholinergic neurons.
- BMPs increased ChAT activity, but noggin did not inhibit MCM effects.
- IL-6 alone did not mimic MCM, but its neutralization reduced MCM effectiveness.
Conclusions:
- A complex cocktail of microglial-derived factors, including IL-6, promotes excess cholinergic differentiation in the embryonic BF following maternal inflammation.
- These findings highlight the intricate relationship between maternal inflammation and fetal neurodevelopment.
- Further research is needed to fully elucidate the mechanisms involved.
