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Published on: June 10, 2013
The Chemokine MIP-1α/CCL3 impairs mouse hippocampal synaptic transmission, plasticity and memory
Elodie Marciniak1,2,3, Emilie Faivre1,2,3, Patrick Dutar4
1Université de Lille, F-59000 Lille, France.
Insights
The chemokine MIP1-α/CCL3 impairs hippocampal synaptic plasticity and spatial memory. Blocking its receptor CCR5 with Maraviroc reverses these memory deficits, suggesting CCL3 is a key neuromodulator.
Area of Science:
- Neuroscience
- Immunology
- Molecular Biology
Background:
- Chemokines are crucial signaling molecules in immune regulation.
- Chemokines also influence brain development, neurogenesis, and neuroendocrine functions.
- Elevated chemokine levels are linked to cognitive impairments, but their role in synaptic plasticity is unclear.
Purpose of the Study:
- To investigate the effects of MIP1-α/CCL3 on hippocampal synaptic transmission and plasticity.
- To assess the impact of CCL3 on spatial memory and long-term memory.
- To determine the role of CCR5 in mediating CCL3's effects.
Main Methods:
- Electrophysiological recordings of hippocampal Schaffer collateral-CA1 synapses.
- Assessment of long-term potentiation (LTP) and long-term depression (LTD).
- Behavioral tests including the two-step Y-maze and passive avoidance tasks in mice.
Main Results:
- CCL3 (50 ng/ml) reduced basal synaptic transmission via postsynaptic mechanisms.
- CCL3 impaired LTP but not LTD, an effect blocked by the CCR5 antagonist Maraviroc.
- Intracerebroventricular injections of CCL3 impaired spatial and long-term memory, which was reversed by Maraviroc.
Conclusions:
- The chemokine CCL3 acts as a hippocampal neuromodulator.
- CCL3 regulates synaptic plasticity mechanisms essential for learning and memory.
- Targeting CCR5 may offer a therapeutic strategy for cognitive impairments associated with CCL3 dysregulation.
Abstract:
Chemokines are signaling molecules playing an important role in immune regulations. They are also thought to regulate brain development, neurogenesis and neuroendocrine functions. While chemokine upsurge has been associated with conditions characterized with cognitive impairments, their ability to modulate synaptic plasticity remains ill-defined. In the present study, we specifically evaluated the effects of MIP1-α/CCL3 towards hippocampal synaptic transmission, plasticity and spatial memory. We found that CCL3 (50 ng/ml) significantly reduced basal synaptic transmission at the Schaffer collateral-CA1 synapse without affecting NMDAR-mediated field potentials. This effect was ascribed to post-synaptic regulations, as CCL3 did not impact paired-pulse facilitation. While CCL3 did not modulate long-term depression (LTD), it significantly impaired long-term potentiation (LTP), an effect abolished by Maraviroc, a CCR5 specific antagonist. In addition, sub-chronic intracerebroventricular (icv) injections of CCL3 also impair LTP. In accordance with these electrophysiological findings, we demonstrated that the icv injection of CCL3 in mouse significantly impaired spatial memory abilities and long-term memory measured using the two-step Y-maze and passive avoidance tasks. These effects of CCL3 on memory were inhibited by Maraviroc. Altogether, these data suggest that the chemokine CCL3 is an hippocampal neuromodulator able to regulate synaptic plasticity mechanisms involved in learning and memory functions.
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