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Updated: May 9, 2026

Investigations on Alterations of Hippocampal Circuit Function Following Mild Traumatic Brain Injury
Published on: November 19, 2012
[The child's brain: normal (unaltered) development and development altered by perinatal injury]
1Dartmouth Medical School, NH 03755 Hanover, EE.UU.
Insights
Perinatal brain injuries cause local damage that alters brain development. These changes can spread to connected regions, impacting a child's neurological and psychological growth.
Area of Science:
- Neuroscience
- Developmental Biology
- Neuropathology
Context:
- Child brain development involves progressive interconnection of regions.
- Perinatal injuries, such as hemorrhages and white matter infarcts, disrupt normal development.
- Brain lesions cause local alterations with potential remote effects.
Purpose:
- To analyze morphological and functional changes in normal and altered child brain development.
- To detail neuropathological development of specific perinatal injuries.
- To investigate how local brain lesions affect interconnected regions.
Summary:
- Brain damage alters local components like neurons and glial cells, leading to transformed cell structures and altered reinnervation/revascularization.
- Grey matter's microvasculature protects neurons from white matter infarcts, but disconnection from fibers impairs function.
- Local lesions can modify morphology and function in interconnected remote regions, impacting neurological and psychological development.
Impact:
- Understanding how perinatal injuries affect brain development is crucial for predicting and managing long-term neurological and psychological outcomes.
- Identifying the spread of injury effects across interconnected brain regions can inform targeted interventions.
- This research highlights the potential for local brain damage to trigger widespread functional and morphological alterations, including conditions like epilepsy.
Abstract:
In this study we analyse some of the morphological and functional aspects of normal and altered development (the latter due to perinatal injury) in the child's brain. Both normal and altered development are developmental processes that progressively interconnect the different regions. The neuropathological development of subpial and periventricular haemorrhages, as well as that of white matter infarct, are analysed in detail. Any kind of brain damage causes a local lesion with possible remote repercussions. All the components (neurons, fibres, blood capillaries and neuroglias) of the affected region undergo alterations. Those that are destroyed are eliminated by the inflammatory process and those that survive are transformed. The pyramidal neurons with amputated apical dendrites are transformed and become stellate cells, the axonal terminals and those of the radial glial cells are regenerated and the region involved is reinnervated and revascularised with an altered morphology and function (altered local corticogenesis). The specific microvascular system of the grey matter protects its neurons from infarction of the white matter. Although it survives, the grey matter is left disconnected from the afferent and efferent fibres, amputated by the infarct with alterations affecting its morphology and possibly its functioning (altered local corticogenesis). Any local lesion can modify the morphological and functional development of remote regions that are functionally interconnected with it (altered remote corticogenesis). We suggest that any local brain injury can alter the morphology and functioning of the regions that are morphologically and functionally interconnected with it and thus end up affecting the child's neurological and psychological development. These changes can cross different regions of the brain (epileptic auras) and, if they eventually reach the motor region, will give rise to the motor storm that characterises epilepsy.
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