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Updated: Jun 16, 2026

Isolation of Cortical Microglia with Preserved Immunophenotype and Functionality From Murine Neonates
Published on: January 30, 2014
Microglia morphology in the developing primate amygdala and effects of early life stress
Abstract:
A unique pool of immature glutamatergic neurons in the primate amygdala, known as the paralaminar nucleus (PL), are maturing between infancy and adolescence. The PL is a potential substrate for the steep growth curve of amygdala volume during this developmental period. A microglial component is also embedded among the PL neurons, and likely supports local neuronal maturation and emerging synaptogenesis. Microglia may alter neuronal growth following environmental perturbations such as stress. Using multiple measures, we first found that microglia in the infant primate PL had relatively large somas, and a small arbor size. In contrast, microglia in the adolescent PL had a smaller soma, and a larger dendritic arbor. We then examined microglial morphology in the PL after a novel maternal separation protocol, to examine the effects of early life stress. After maternal separation, the microglia had increased soma size, arbor size and complexity. Surprisingly, strong effects were seen not only in the infant PL, but also in the adolescent PL from subjects who had experienced the separation many years earlier. We conclude that under maternal-rearing conditions, PL microglia morphology tracks PL neuronal growth, progressing to a more 'mature' phenotype by adolescence. Maternal separation has long-lasting effects on microglia, altering their normal developmental trajectory, and resulting in a 'hyper-ramified' phenotype that persists for years. We speculate that these changes have consequences for neuronal development in young primates.
Significance Statement:
The paralaminar (PL) nucleus of the amygdala is an important source of plasticity, due to its unique repository of immature glutamatergic neurons. PL immature neurons mature between birth and adolescence. This process is likely supported by synaptogenesis, which requires microglia. Between infancy and adolescence in macaques, PL microglia became more dense, and shifted to a 'ramified' phenotype, consistent with increased synaptic pruning functions. Early life stress in the form of maternal separation, however, blunted this normal trajectory, leading to persistent 'parainflammatory' microglial morphologies. We speculate that early life stress may alter PL neuronal maturation and synapse formation through microglia.
Insights
Early life stress permanently alters primate amygdala microglia, impacting neuronal development. Maternal separation in infancy or adolescence leads to long-lasting changes in microglial structure, affecting brain plasticity.
Area of Science:
- Neuroscience
- Developmental Biology
- Cell Biology
Background:
- The primate amygdala's paralaminar nucleus (PL) contains immature glutamatergic neurons that mature from infancy to adolescence.
- Microglia, immune cells within the brain, support neuronal maturation and synapse formation in the PL.
- Amygdala volume significantly increases during this developmental period, suggesting substantial neuronal growth.
Purpose of the Study:
- To investigate the developmental trajectory of microglia in the primate PL from infancy to adolescence.
- To examine the effects of early life stress (maternal separation) on microglial morphology in the PL.
- To determine the long-lasting impact of early life stress on PL microglia and its potential consequences for neuronal development.
Main Methods:
- Comparative analysis of microglial soma size and arbor complexity in infant and adolescent macaques.
- Implementation of a maternal separation protocol to induce early life stress.
- Morphological assessment of microglia in the PL of infants and adolescents following maternal separation, including long-term follow-up.
Main Results:
- Microglia in infant PL have larger somas and smaller arbors compared to adolescents, indicating developmental maturation.
- Maternal separation induced significant increases in microglial soma size, arbor size, and complexity in both infant and adolescent PL.
- These microglial alterations following maternal separation persisted for years, even into adolescence, suggesting long-lasting effects.
Conclusions:
- Primate PL microglia morphology naturally matures from infancy to adolescence, tracking neuronal growth.
- Early life stress, specifically maternal separation, disrupts this normal microglial developmental trajectory, inducing a persistent 'hyper-ramified' phenotype.
- These persistent microglial changes following early life stress may have long-term consequences for primate amygdala neuronal development and function.
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