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Maternal Creatine Supplementation Positively Affects Male Rat Hippocampal Synaptic Plasticity in Adult Offspring
Stefano Sartini1, Davide Lattanzi2, Michael Di Palma2
1Department of Biomolecular Sciences, University of Urbino Carlo Bo, I-61029 Urbino, Italy. stefano.sartini@uniurb.it.
Insights
Prenatal creatine supplementation enhanced neuron excitability and long-term potentiation (LTP) in adult rats. These findings suggest potential benefits for adult cognitive abilities and memory formation.
Area of Science:
- Neuroscience
- Developmental Biology
- Biochemistry
Background:
- Creatine is vital for brain development; deficiency causes cognitive impairments.
- Creatine supplementation is explored for fetal protection against oxidative stress.
- Creatine is generally considered safe with minimal clinical health risks.
Purpose of the Study:
- To investigate long-lasting effects of prenatal creatine supplementation on neuronal maturation and function in adult offspring.
- To determine if creatine exposure during development alters neuronal excitability and synaptic plasticity into adulthood.
Main Methods:
- Morphological, electrophysiological, and calcium imaging techniques were used.
- Hippocampal Cornu Ammonis 1 (CA1) neurons of adult rats from creatine-supplemented dams were analyzed.
- Comparison was made with age-matched control groups.
Main Results:
- Adult offspring from creatine-supplemented dams exhibited enhanced neuron excitability.
- Improved long-term potentiation (LTP), a key mechanism for memory, was observed.
- These effects persisted long after the cessation of creatine exposure during development.
Conclusions:
- Prenatal creatine supplementation can induce lasting modifications in neuronal function.
- Enhanced excitability and LTP suggest potential positive impacts on adult cognitive abilities.
- Further research is warranted to explore the translation of these findings to human cognitive development.
Abstract:
Creatine plays a crucial role in developing the brain, so much that its genetic deficiency results in mental dysfunction and cognitive impairments. Moreover, creatine supplementation is currently under investigation as a preventive measure to protect the fetus against oxidative stress during difficult pregnancies. Although creatine use is considered safe, posing minimal risk to clinical health, we found an alteration in morpho-functional maturation of neurons when male rats were exposed to creatine loads during brain development. In particular, increased excitability and enhanced long-term potentiation (LTP) were observed in the hippocampal pyramidal neurons of weaning pups. Since these effects were observed a long time after creatine treatment had been terminated, long-lasting modifications persisting into adulthood were hypothesized. Such modifications were investigated in the present study using morphological, electrophysiological, and calcium imaging techniques applied to hippocampal Cornu Ammonis 1 (CA1) neurons of adult rats born from dams supplemented with creatine. When compared to age-matched controls, the treated adult offspring were found to retain enhanced neuron excitability and an improved LTP, the best-documented neuronal substrate for memory formation. While translating data from rats to humans does have limitations, our findings suggest that prenatal creatine supplementation could have positive effects on adult cognitive abilities.
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