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Developmental Changes in Microglial Mobilization Are Independent of Apoptosis in the Neonatal Mouse Hippocampus

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Publisher Elsevier
Date 2015 Nov 19
PMID 26576723
Citations 21
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Abstract

During CNS development, microglia transform from highly mobile amoeboid-like cells to primitive ramified forms and, finally, to highly branched but relatively stationary cells in maturity. The factors that control developmental changes in microglia are largely unknown. Because microglia detect and clear apoptotic cells, developmental changes in microglia may be controlled by neuronal apoptosis. Here, we assessed the extent to which microglial cell density, morphology, motility, and migration are regulated by developmental apoptosis, focusing on the first postnatal week in the mouse hippocampus when the density of apoptotic bodies peaks at postnatal day 4 and declines sharply thereafter. Analysis of microglial form and distribution in situ over the first postnatal week showed that, although there was little change in the number of primary microglial branches, microglial cell density increased significantly, and microglia were often seen near or engulfing apoptotic bodies. Time-lapse imaging in hippocampal slices harvested at different times over the first postnatal week showed differences in microglial motility and migration that correlated with the density of apoptotic bodies. The extent to which these changes in microglia are driven by developmental neuronal apoptosis was assessed in tissues from BAX null mice lacking apoptosis. We found that apoptosis can lead to local microglial accumulation near apoptotic neurons in the pyramidal cell body layer but, unexpectedly, loss of apoptosis did not alter overall microglial cell density in vivo or microglial motility and migration in ex vivo tissue slices. These results demonstrate that developmental changes in microglial form, distribution, motility, and migration occur essentially normally in the absence of developmental apoptosis, indicating that factors other than neuronal apoptosis regulate these features of microglial development.

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References
1.
Xavier A, Lima F, Nedergaard M, Menezes J . Ontogeny of CX3CR1-EGFP expressing cells unveil microglia as an integral component of the postnatal subventricular zone. Front Cell Neurosci. 2015; 9:37. PMC: 4330885. DOI: 10.3389/fncel.2015.00037. View

2.
Eyo U, Dailey M . Effects of oxygen-glucose deprivation on microglial mobility and viability in developing mouse hippocampal tissues. Glia. 2012; 60(11):1747-60. PMC: 3786781. DOI: 10.1002/glia.22394. View

3.
Ohsawa K, Kohsaka S . Dynamic motility of microglia: purinergic modulation of microglial movement in the normal and pathological brain. Glia. 2011; 59(12):1793-9. DOI: 10.1002/glia.21238. View

4.
Kettenmann H, Hanisch U, Noda M, Verkhratsky A . Physiology of microglia. Physiol Rev. 2011; 91(2):461-553. DOI: 10.1152/physrev.00011.2010. View

5.
Schafer D, Lehrman E, Stevens B . The "quad-partite" synapse: microglia-synapse interactions in the developing and mature CNS. Glia. 2012; 61(1):24-36. PMC: 4082974. DOI: 10.1002/glia.22389. View