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Disrupted Maternal Care Alters Neural–Microglia Interactions in the Primate Paralaminar Nucleus (PL) of the Amygdala

2026/06/11 by Dennisha P. King, Mayesa Khan, Ania K. Majewska +2 · 1 voice
Neuroscience · #Amygdala #Excitatory postsynaptic potential #Glutamatergic #Memory and Neural Mechanisms #Neurogenesis and neuroplasticity mechanisms #Neuroinflammation and Neurodegeneration Mechanisms #Neurotransmission #Nucleus #Primate #Synapse #Synaptic plasticity #Synaptic pruning

paper · doi:10.1523/jneurosci.0017-26.2026

openalex publication_date 2026/06/11 · openalex created_date 2026/06/12 · openalex updated_date 2026/08/01

Abstract

Prolonged postnatal maturation of the primate amygdala is thought to be driven, at least partially, by continued neural maturation within the paralaminar nucleus (PL). At birth, the PL is densely populated with postmitotic glutamatergic neurons that gradually mature throughout postnatal life. This active process is likely supported by microglia, which promotes synaptic maturation. Our previous work showed that maternal separation alters microglia development across the infant to adolescent transition ( n = 19 females, 4 males). Here, in the same cohort, we examined whether morphologic microglial changes are associated with alterations in the numbers of presynaptic terminals (SYN1 + puncta), postsynaptic terminals (PSD95 + puncta), and putative excitatory contacts (SYN1-PSD95 colocalization) and whether these synaptic elements are engulfed by phagocytic microglia. In maternally reared macaques, SYN1 + puncta, PSD95 + puncta, and putative synaptic contacts decreased, while microglial (IBA1 + ) volume, CD68 + content, and engulfment of synaptic elements increased between infancy and adolescence. These findings suggest greater pruning of all synaptic elements by adolescence. Maternal separation altered this trajectory, resulting in increased phagocytic activity and engulfment of synaptic elements primarily during infancy. Maternal separation also resulted in a 50% reduction in mature PL neurons by adolescence, suggesting maturational failure, cell loss, or both by adolescence. These findings demonstrate that early life stress disrupts normative synaptic pruning and microglia–synapse interactions in the developing primate PL. Increased synaptic engulfment in infants with disrupted care is associated with premature, aberrant pruning and highlights a potential cellular mechanism through which early environmental insults could change PL neural development by adolescence.

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