Microglia shape corpus callosum axon tract fasciculation: functional impact of prenatal inflammation
Lorena Pont-Lezica1, Wouter Beumer, Sabrina Colasse
1Institut de Biologie de l'Ecole Normale Supérieure, F-75005, Paris, France; Institut National de la Santé et de la Recherche Médicale, Paris, France; Centre National de la Recherche Scientifique, Unité Mixte de Recherche, Paris, France.
Abstract:
Microglia colonise the brain parenchyma at early stages of development and accumulate in specific regions where they participate in cell death, angiogenesis, neurogenesis and synapse elimination. A recurring feature of embryonic microglial is their association with developing axon tracts, which, together with in vitro data, supports the idea of a physiological role for microglia in neurite development. Yet the demonstration of this role of microglia is lacking. Here, we have studied the consequences of microglial dysfunction on the formation of the corpus callosum, the largest commissure of the mammalian brain, which shows consistent microglial accumulation during development. We studied two models of microglial dysfunction: the loss-of-function of DAP12, a key microglial-specific signalling molecule, and a model of maternal inflammation by peritoneal injection of lipopolysaccharide at embryonic day (E)15.5. We also took advantage of the Pu.1(-/-) mouse line, which is devoid of microglia. We performed transcriptional profiling of maternally inflamed and Dap12-mutant microglia at E17.5. The two treatments principally down-regulated genes involved in nervous system development and function, particularly in neurite formation. We then analysed the developmental consequences of these microglial dysfunctions on the formation of the corpus callosum. We show that all three models of altered microglial activity resulted in the defasciculation of dorsal callosal axons. Our study demonstrates that microglia display a neurite-development-promoting function and are genuine actors of corpus callosum development. It further shows that microglial activation impinges on this function, thereby revealing that prenatal inflammation impairs neuronal development through a loss of trophic support.
Insights
Microglia actively promote neurite development and corpus callosum formation. Microglial dysfunction, caused by genetic defects or prenatal inflammation, impairs this crucial role in brain development.
Area of Science:
- Neuroscience
- Developmental Biology
- Immunology
Background:
- Microglia are key immune cells in the brain, involved in development and function.
- Embryonic microglia associate with developing axons, suggesting a role in neurite development.
- The precise physiological role of microglia in neurite development remains undemonstrated.
Purpose of the Study:
- To investigate the consequences of microglial dysfunction on corpus callosum formation.
- To determine if microglia play a direct role in neurite development.
- To explore the impact of prenatal inflammation on microglial function and brain development.
Main Methods:
- Utilized DAP12 loss-of-function and maternal inflammation models for microglial dysfunction.
- Employed the Pu.1(-/-) mouse line lacking microglia for comparison.
- Conducted transcriptional profiling of microglia and analyzed corpus callosum development.
Main Results:
- Microglial dysfunction models (DAP12 mutation, maternal inflammation, Pu.1(-/-)) all led to defasciculation of dorsal callosal axons.
- Transcriptional profiling revealed down-regulation of nervous system development genes in affected microglia.
- Demonstrated that microglia are essential for proper corpus callosum development.
Conclusions:
- Microglia actively promote neurite development and are critical for corpus callosum formation.
- Microglial activation, such as by prenatal inflammation, impairs their supportive function.
- Prenatal inflammation can negatively impact neuronal development by disrupting microglial trophic support.


