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Recording Spatially Restricted Oscillations in the Hippocampus of Behaving Mice
Published on: July 1, 2018
Posterior parietal cortex oscillatory activity reflects persistent spatial memory impairments induced by early
Souhail Djebari1, Ana Contreras1, Victor Castro-Andrés2
1Neurophysiology & Behavior Lab, Instituto de Investigación Sanitaria de Castilla-La Mancha (IDISCAM) and Institute of Biomedicine (IB-UCLM), School of Medicine of Ciudad Real, University of Castilla-La Mancha, Ciudad Real, Spain.
Abstract:
In early stages of Alzheimer's disease (AD), soluble amyloid-β (Aβ) is a key player disrupting neuronal activity and contributing to cognitive decline in advanced stages of the disease. Although the hippocampus has been a central focus in prior research because of its susceptibility to Aβ-induced alterations, a comprehensive understanding of the temporal progression of early AD pathology requires exploring interconnected brain regions. The posterior parietal cortex (PPC), collaborating closely with the hippocampus and involved in various memory processes, particularly spatial memory formation, holds particular significance. Investigating the function of the PPC is imperative because it may contribute to early AD characteristics and provide a more holistic perspective on disease progression. To address this gap, we examined the relationship between neural oscillations and memory processes in both the PPC and hippocampus, in a mouse model of early hippocampal amyloidosis generated by intracerebroventricular oligomeric Aβ1-42 (oAβ1-42) injection. By performing in vivo oscillatory activity recordings from these regions in alert animals, together with spatial and habituation memory tests (Barnes maze and open field habituation), we found oAβ1-42 to induce significant alterations in PPC oscillatory activity. These changes emerged several days after hippocampal disturbances showed as aberrant synaptic plasticity and network activity. Additionally, significant alterations of stereotyped behaviours were not found. Our results provide an electrophysiological substrate for persistent spatial memory deficits and the temporal progression pattern of the early deleterious effects caused by Aβ. Furthermore, investigating PPC oscillatory activity might be a valuable approach for early detection and intervention in AD. KEY POINTS: Posterior parietal cortex (PPC), in close collaboration with the hippocampus, has been implicated in various memory processes disrupted in early Alzheimer's disease models. A mouse model of early Alzheimer's-like hippocampal amyloidosis generated by intracerebroventricular oligomeric Aβ1-42 (oAβ1 42) injection was used to examine the relationship between neural oscillations and memory processes in both the PPC and hippocampus. oAβ1-42 induces alterations in spatial and habituation memory, associated with PPC aberrant oscillatory activity, several days after hippocampal synaptic plasticity and network activity disturbances were found. We provide an electrophysiological PPC-mediated substrate for persistent spatial memory deficits and the temporal progression pattern of the early oscillatory deleterious effects caused by Aβ.
Insights
Early Alzheimer's disease (AD) involves amyloid-beta (Aβ) disrupting memory. This study shows Aβ affects posterior parietal cortex (PPC) oscillations after hippocampal changes, offering insights into AD progression and early detection.
Area of Science:
- Neuroscience
- Pathology
- Biochemistry
Background:
- Soluble amyloid-beta (Aβ) is crucial in early Alzheimer's disease (AD), impacting neuronal activity and cognition.
- While the hippocampus is studied, understanding interconnected regions like the posterior parietal cortex (PPC) is vital for early AD pathology.
- The PPC's role in memory processes, especially spatial memory, makes it significant for studying early AD characteristics.
Purpose of the Study:
- To investigate the relationship between neural oscillations and memory in the PPC and hippocampus in an early AD mouse model.
- To explore the temporal progression of Aβ-induced pathology across these interconnected brain regions.
Main Methods:
- Utilized a mouse model with intracerebroventricular injection of oligomeric Aβ1-42 (oAβ1-42) to induce early hippocampal amyloidosis.
- Performed in vivo recordings of neural oscillatory activity in the PPC and hippocampus of alert animals.
- Conducted spatial and habituation memory tests, including the Barnes maze and open field habituation.
Main Results:
- oAβ1-42 induced significant alterations in PPC oscillatory activity.
- These PPC changes occurred several days after initial hippocampal disturbances, such as aberrant synaptic plasticity and network activity.
- No significant alterations were found in stereotyped behaviors.
Conclusions:
- The study provides an electrophysiological basis for spatial memory deficits and the temporal spread of Aβ's early detrimental effects.
- Altered PPC oscillatory activity is linked to spatial memory impairments in early AD.
- Investigating PPC oscillations may aid in the early detection and intervention of Alzheimer's disease.

