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Cytomegalovirus infection lengthens the cell cycle of granule cell precursors during postnatal cerebellar development
Cathy Yea Won Sung, Mao Li, Stipan Jonjic, Veronica Sanchez, William J. Britt
Cathy Yea Won Sung, Mao Li, Stipan Jonjic, Veronica Sanchez, William J. Britt
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Research Article Inflammation Neuroscience

Cytomegalovirus infection lengthens the cell cycle of granule cell precursors during postnatal cerebellar development

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Abstract

Human cytomegalovirus (HCMV) infection in infants infected in utero can lead to a variety of neurodevelopmental disorders. However, mechanisms underlying altered neurodevelopment in infected infants remain poorly understood. We have previously described a murine model of congenital HCMV infection in which murine CMV (MCMV) spreads hematogenously and establishes a focal infection in all regions of the brain of newborn mice, including the cerebellum. Infection resulted in disruption of cerebellar cortical development characterized by reduced cerebellar size and foliation. This disruption was associated with altered cell cycle progression of the granule cell precursors (GCPs), which are the progenitors that give rise to granule cells (GCs), the most abundant neurons in the cerebellum. In the current study, we have demonstrated that MCMV infection leads to prolonged GCP cell cycle, premature exit from the cell cycle, and reduced numbers of GCs resulting in cerebellar hypoplasia. Treatment with TNF-α neutralizing antibody partially normalized the cell cycle alterations of GCPs and altered cerebellar morphogenesis induced by MCMV infection. Collectively, our results argue that virus-induced inflammation altered the cell cycle of GCPs resulting in a reduced numbers of GCs and cerebellar cortical hypoplasia, thus providing a potential mechanism for altered neurodevelopment in fetuses infected with HCMV.

Authors

Cathy Yea Won Sung, Mao Li, Stipan Jonjic, Veronica Sanchez, William J. Britt

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Figure 4

Prolonged GCP cell cycle during MCMV infection is due to the lengthening of G1 and S phases.

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Prolonged GCP cell cycle during MCMV infection is due to the lengthening...
(A) Schedule of in vivo cumulative BrdU labeling protocol to estimate length of each phase of cell cycle of GCPs in the cerebellar EGL. (B) Representative images of brain sections stained for BrdU (red), DCX (labeling the iEGL; green), and DAPI (nuclei staining; blue) from control and MCMV-infected mice exposed to cumulative BrdU for the indicated time. In MCMV-infected cerebellum, fewer GCPs incorporated BrdU at time points are shown (1, 10, 18, and 24 hours) compared with control mice. Scale bar: 30 μm. (C) BrdU+ GCPs in the oEGL of the cerebella were quantified (BrdU LI) at time points and plotted against duration of BrdU exposure to estimate cell cycle parameters. The BrdU LI was used to determine the duration of the cell cycle (TC) and time required to complete S phase (TS). Refer to Table 1 for cell cycle length (total cell cycle length, G1 phase, and S phase). Data are shown as mean ± SD, n = 3–4 mice/experimental group of the cerebellum.

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