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Updated: May 4, 2026

Use of an Eight-arm Radial Water Maze to Assess Working and Reference Memory Following Neonatal Brain Injury
Published on: December 4, 2013
Road work on memory lane--functional and structural alterations to the learning and memory circuit in adults born
Piergiorgio Salvan1, Seán Froudist Walsh1, Matthew P G Allin1
1Department of Psychosis Studies, Institute of Psychiatry, King's Health Partners, King's College London, De Crespigny Park, London SE5 8AF, UK.
Insights
Very preterm birth impacts adult brain function in learning and memory networks. Despite similar task performance, differences in brain activation and white matter integrity were observed in very preterm adults compared to term-born controls.
Area of Science:
- Neuroscience
- Cognitive Neuroscience
- Developmental Neuroscience
Background:
- Very preterm (VPT) birth is associated with long-term risks for neurological and cognitive impairments.
- VPT individuals often experience learning and memory difficulties, impacting academic and adult life prospects.
- Understanding the neural underpinnings of these cognitive differences is crucial for targeted interventions.
Purpose of the Study:
- To investigate functional brain recruitment during learning (encoding and recall) in VPT-born adults compared to term-born controls.
- To examine microstructural differences in white-matter tracts connecting learning and memory networks in VPT adults.
- To explore the relationship between functional activation patterns and white-matter integrity in VPT individuals.
Main Methods:
- Functional MRI (fMRI) and diffusion-weighted MRI were employed to assess brain activity and white matter structure.
- A verbal paired associate learning (VPAL) task was administered to 21 VPT-born adults and 10 term-born controls.
- Tractography was used to analyze fractional anisotropy (FA) in white-matter tracts seeded from regions showing differential activation.
Main Results:
- VPT adults showed distinct patterns of brain activation during encoding (anterior cingulate-caudate body) and retrieval (thalamus, hippocampus, parahippocampal gyrus) compared to controls.
- No significant difference in the number of correctly recalled word pairs was found between the groups.
- VPT adults exhibited reduced FA in tracts connecting the thalamic/hippocampal region, including the fornix and longitudinal/occipito-frontal fasciculi.
Conclusions:
- Young adults born very preterm display altered functional brain activation in key learning and memory areas.
- Reduced white matter integrity in connecting tracts may underlie the observed functional differences, potentially due to neonatal injury.
- Despite neural differences, VPT adults can achieve unimpaired performance on low-demand learning tasks, suggesting adaptive plasticity.
Abstract:
Very preterm (VPT) birth is considered a risk factor not only for neurological impairment, but also for reduced function in several cognitive domains in childhood and later in life. Individuals who were born VPT are more likely to demonstrate learning and memory difficulties compared to term-born controls. These problems contribute to more VPT-born children repeating grades and underachieving in school. This, in turn, affects their prospects in adult life. Here we aimed to 1) study how the VPT-born adult brain functionally recruited specific areas during learning, i.e. encoding and recall across four repeated blocks of verbal stimuli, and to investigate how these patterns of activation differed from term-born subjects; and 2) probe the microstructural differences of white-matter tracts connecting these areas to other parts of the learning and memory network. To investigate these functional-structural relationships we analyzed functional and diffusion-weighted MRI. Functional-MRI and a verbal paired associate learning (VPAL) task were used to extract Blood Oxygenation Level Dependent (BOLD) activity in 21 VPT-born adults (<33 weeks of gestation) (mean age: 19.68 years ± 0.85; IQ: 99.86 ± 11.20) and 10 term-born controls (mean age: 19.87 years ± 2.04; IQ: 108.9 ± 13.18). Areas in which differences in functional activation were observed between groups were used as seed regions for tractography. Fractional anisotropy (FA) of the tract-skeleton was then compared between groups on a voxel-wise basis. Results of functional MRI analysis showed a significantly different pattern of activation between groups during encoding in right anterior cingulate-caudate body, and during retrieval in left thalamus, hippocampus and parts of left posterior parahippocampal gyrus. The number of correctly recalled word pairs did not statistically differ between individuals who were born VPT and controls. The VPT-born group was found to have reduced FA in tracts passing through the thalamic/hippocampal region that was differently activated during the recall condition, with the hippocampal fornix, inferior longitudinal fasciculus and inferior fronto-occipital fasciculus particularly affected. Young adults who were born very preterm display a strikingly different pattern of activation during the process of learning in key structures of the learning and memory network, including anterior cingulate and caudate body during encoding and thalamus/parahippocampal gyrus during cued recall. Altered activation in thalamus/parahippocampal gyrus may be explained by reduced connections between these areas and the hippocampus, which may be a direct consequence of neonatal hypoxic/ischemic injury. These results could reflect the effect of adaptive plastic processes associated with high-order cognitive functions, at least when the cognitive load remains relatively low, as ex-preterm young adults displayed unimpaired performance in completing the verbal paired associate learning task.
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