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Updated: Nov 28, 2025

Ex Vivo Imaging of Postnatal Cerebellar Granule Cell Migration Using Confocal Macroscopy
Published on: May 12, 2015
Intrauterine growth restriction compromises cerebellar development by affecting radial migration of granule cells via
Igor Y Iskusnykh1, Nikolai Fattakhov1, Randal K Buddington2
1Department of Anatomy and Neurobiology, University of Tennessee Health Science Center, Memphis, TN 38163, USA.
Insights
Intrauterine growth restriction (IUGR) impairs cerebellar development in piglets by disrupting granule cell (GC) migration. This leads to long-lasting motor and cognitive deficits in small for gestational age (SGA) infants.
Area of Science:
- Neuroscience
- Developmental Biology
- Genetics
Background:
- Intrauterine growth restriction (IUGR) affects 10% of pregnancies, causing small for gestational age (SGA) infants with potential motor and cognitive deficits.
- Cerebellar abnormalities are implicated in SGA-related neurodevelopmental issues, but the underlying mechanisms are unclear.
Purpose of the Study:
- To investigate the impact of IUGR on cerebellar development using a pig model.
- To identify molecular mechanisms underlying cerebellar pathology in IUGR.
Main Methods:
- Utilized a pig model exhibiting spontaneous IUGR due to placental insufficiency.
- Analyzed cerebellar histology, cell proliferation, migration markers, gene expression, and apoptosis in SGA and control piglets.
- Employed organotypic cerebellar slice cultures to test rescue strategies.
Main Results:
- SGA pigs displayed smaller cerebella with fewer mature granule cells (GCs) and increased GC precursor proliferation.
- GCs in SGA pigs showed impaired migration initiation from the external granule layer (EGL) to the internal granule layer (IGL).
- Reduced Bergmann glial fibers and disrupted Pard3a/JamC signaling were associated with migratory defects and increased apoptosis in SGA piglets.
Conclusions:
- Disruption of the Pard3a/JamC pathway impairs GC radial migration initiation, a key mechanism in IUGR-related cerebellar pathology.
- Impaired GC migration and increased apoptosis in the EGL are persistent consequences of IUGR.
- Restoring Pard3a and JamC expression can rescue migratory and apoptotic defects in IUGR cerebella.
Abstract:
Intrauterine growth restriction (IUGR) affects ~10% of human pregnancies, results in infants born small for gestational age (SGA), and is associated with motor and cognitive deficits. Human studies suggest that some deficits in SGA patients originate in the cerebellum, a major motor-coordination and cognitive center, but the underlying mechanisms remain unknown. To identify the cerebellar developmental program affected by IUGR, we analyzed the pig as a translational animal model in which some fetuses spontaneously develop IUGR due to early-onset chronic placental insufficiency. Similar to humans, SGA pigs revealed small cerebella, which contained fewer mature granule cells (GCs) in the internal granule cell layer (IGL). Surprisingly, newborn SGA pigs had increased proliferation of GC precursors in the external granule cell layer (EGL), which was associated with an increased density of Purkinje cells, known to non-autonomously promote the proliferation of GCs. However, the GCs of SGA pigs did not properly initiate exit from the EGL to IGL, which was associated with a decreased density of guiding Bergmann glial fibers, reduced expression of pro-migratory genes Pard3a, JamC and Sema6a, and increased apoptosis. While proliferation spontaneously normalized during postnatal development, accumulation of pre-migratory GCs and apoptosis in the EGL were long-lasting consequences of IUGR. Using organotypic cerebellar slice cultures, we showed that normalizing expression of Pard3a and JamC, which operate in the same molecular pathway in GCs, was sufficient to rescue both migratory and, at a later time point, apoptotic defects of IUGR. Thus, a decreased exit of GCs from the EGL, due to disrupted Pard3a/JamC radial migration initiation pathway, is a major mechanism of IUGR-related cerebellar pathology.
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