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A Neuroimaging Investigation of the Association Between Aerobic Fitness, Hippocampal Volume, and Memory Performance in Preadolescent Children

Overview
Journal Brain Res
Specialty Neurology
Date 2010 Aug 26
PMID 20735996
Citations 232
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Abstract

Because children are becoming overweight, unhealthy, and unfit, understanding the neurocognitive benefits of an active lifestyle in childhood has important public health and educational implications. Animal research has indicated that aerobic exercise is related to increased cell proliferation and survival in the hippocampus as well as enhanced hippocampal-dependent learning and memory. Recent evidence extends this relationship to elderly humans by suggesting that high aerobic fitness levels in older adults are associated with increased hippocampal volume and superior memory performance. The present study aimed to further extend the link between fitness, hippocampal volume, and memory to a sample of preadolescent children. To this end, magnetic resonance imaging was employed to investigate whether higher- and lower-fit 9- and 10-year-old children showed differences in hippocampal volume and if the differences were related to performance on an item and relational memory task. Relational but not item memory is primarily supported by the hippocampus. Consistent with predictions, higher-fit children showed greater bilateral hippocampal volumes and superior relational memory task performance compared to lower-fit children. Hippocampal volume was also positively associated with performance on the relational but not the item memory task. Furthermore, bilateral hippocampal volume was found to mediate the relationship between fitness level (VO(2) max) and relational memory. No relationship between aerobic fitness, nucleus accumbens volume, and memory was reported, which strengthens the hypothesized specific effect of fitness on the hippocampus. The findings are the first to indicate that aerobic fitness may relate to the structure and function of the preadolescent human brain.

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References
1.
Henke K, Buck A, Weber B, Wieser H . Human hippocampus establishes associations in memory. Hippocampus. 1997; 7(3):249-56. DOI: 10.1002/(SICI)1098-1063(1997)7:3<249::AID-HIPO1>3.0.CO;2-G. View

2.
Cohen N, Ryan J, Hunt C, Romine L, Wszalek T, Nash C . Hippocampal system and declarative (relational) memory: summarizing the data from functional neuroimaging studies. Hippocampus. 1999; 9(1):83-98. DOI: 10.1002/(SICI)1098-1063(1999)9:1<83::AID-HIPO9>3.0.CO;2-7. View

3.
Rombouts S, Scheltens P, Machielson W, Barkhof F, Hoogenraad F, Veltman D . Parametric fMRI analysis of visual encoding in the human medial temporal lobe. Hippocampus. 2000; 9(6):637-43. DOI: 10.1002/(SICI)1098-1063(1999)9:6<637::AID-HIPO4>3.0.CO;2-V. View

4.
Shvartz E, Reibold R . Aerobic fitness norms for males and females aged 6 to 75 years: a review. Aviat Space Environ Med. 1990; 61(1):3-11. View

5.
Davis C, Tomporowski P, Boyle C, Waller J, Miller P, Naglieri J . Effects of aerobic exercise on overweight children's cognitive functioning: a randomized controlled trial. Res Q Exerc Sport. 2008; 78(5):510-9. PMC: 2662758. DOI: 10.1080/02701367.2007.10599450. View