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Preparation of Acute Hippocampal Slices from Rats and Transgenic Mice for the Study of Synaptic Alterations during Aging and Amyloid Pathology
Published on: March 23, 2011
Perinatal nutritional iron deficiency reduces hippocampal synaptic transmission but does not impair short- or
Matthew D McEchron1, Michael D Paronish
1Department of Neural and Behavioral Science, Pennsylvania State University College of Medicine, Hershey, PA 17033, USA. mdm27@psu.edu
Insights
Perinatal iron deficiency (ID) impairs learning. This study found reduced hippocampal synaptic transmission in iron-deficient rats, suggesting a cause for cognitive deficits.
Area of Science:
- Neuroscience
- Developmental Biology
- Nutritional Science
Background:
- Perinatal nutritional iron deficiency (ID) is linked to cognitive impairments.
- The hippocampus, crucial for learning and memory, may be affected by developmental ID.
Purpose of the Study:
- To investigate the impact of perinatal ID on hippocampal synaptic efficacy in rats.
- To determine if synaptic plasticity (short-term and long-term) is altered by developmental ID.
Main Methods:
- Electrophysiological brain slice methods were used on rat hippocampi.
- Synaptic efficacy was measured in the dentate gyrus (DG) and CA1 regions.
- Rats were fed ID or control (CN) diets from gestational day 11.
Main Results:
- No impairment in short-term (paired-pulse facilitation) or long-term (long-term potentiation) synaptic plasticity was observed in ID rats.
- Input-output measures revealed reduced synaptic transmission in both DG and CA1 areas of ID rats compared to controls.
Conclusions:
- Developmental iron deficiency reduces hippocampal synaptic transmission.
- This reduction in synaptic transmission, not impaired plasticity, may underlie ID-induced learning and memory deficits.
Abstract:
Studies show that perinatal nutritional iron deficiency (ID) produces learning and memory impairments in humans and animals. This suggests that the functional physiology of learning and cognitive centers in the brain, such as the hippocampus, may be compromised by developmental ID. The present study used electrophysiological brain slice methods to examine multiple measures of hippocampal synaptic efficacy from rats that were subjected to perinatal ID diets or control (CN) diets. Measures of synaptic efficacy were obtained from the first and last synaptic regions of the hippocampal tri-synaptic loop (i.e. the dentate gyrus (DG) and CA1). Rats were placed on ID or CN diets on gestational day 11, and hippocampal brain slices were prepared between postnatal day 25 and 37. Results show that ID slices were not impaired in short-term (i.e. paired-pulse facilitation (PPF)) or long-term measures (i.e. long-term potentiation (LTP)) of synaptic plasticity in either the DG or CA1 areas. Input-output (IO) measures showed that synaptic transmission was reduced in both of these areas in the ID slices when compared with the CN slices. This suggests that ID-induced learning deficits may be the result of reductions in synaptic transmission throughout the hippocampus, and possibly in other learning and memory centers.
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