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Piza, D. B.

Publications and source records attributed to Piza, D. B..

2 recordsLinked to original sources

Visual exploration drives Hippocampal SWR rates during 3D spatial navigation in the freely moving marmoset

Spatial navigation requires the brain to continuously sample the external world while evaluating internal representations of space. In rodents, this process unfolds through alternating periods of locomotion and pauses. During pauses, hippocampal sharp-wave ripples (SWRs) rates increase, likely reflecting the broadcast of spatial memories that guide navigation. Whether similar dynamics govern navigation in primates remains unknown. Here, we recorded hippocampal activity in freely moving marmosets navigating a 3D maze. Like rodents, marmosets alternated between locomotion and pauses. However, pauses were long and showed an increase in SWR rates relative to locomotion. SWRs were most prominent when animals maintained stable head orientations toward rewarded locations and were reduced during rapid exploratory head movements. SWR rates further increased when spatial memories were used to guide navigation. Our findings reveal a phylogenetically conserved motif linking behavioral states during spatial navigation to hippocampal SWR dynamics across mammals and show how primate visual specializations have adapted this motif to support vision-guided navigation. Significance StatementOur results reveal a phylogenetically conserved hippocampal navigation motif that has persisted despite major evolutionary changes in mammalian sensory ecology. Across species, navigation alternates between external exploration and internal evaluation, with SWRs marking periods of memory-guided computation. However, primate evolution reshaped the behavioral expression of this motif by coupling it to active visual sampling, gaze control, and foveal inspection of landmarks. Thus, evolution appears to have preserved a core hippocampal algorithm for navigation while adapting its sensory inputs and behavioral context to the demands of diurnal, vision-guided life.

animal behavior and cognition↗

The hippocampus of the common marmoset is a GPS, but G is for gaze

The mammalian hippocampus has been compared to a Global Positioning System (GPS) that enables spatial navigation. This notion has been primarily drawn from studies conducted in nocturnal mammals, such as rats; that lack many adaptations to daylight vision compared to diurnal primates. Here we demonstrate that during foraging in a 3D maze, the common marmoset, a new world diurnal primate with foveal, stereo-color vision, predominantly uses rapid head-gaze shifts to visually explore their surroundings while remaining stationary, and then minimizes head movements to navigate towards goals. On the other hand, rats, mainly move their head at low velocities while locomoting to explore the environment using their whiskers. These differences in exploration-navigation strategies reflect the species sensory adaptations to different ecological niches. In the marmoset hippocampus CA3/CA1 regions putative pyramidal neurons show selectivity for 3D view, head direction, and less for place, but mainly mixed selectivity for combinations of these variables. Despite weak place selectivity, the spatial position of the animal in the maze can be decoded from the activity of small ensembles of mixed selective neurons. Inhibitory interneurons are tuned to 3D angular head velocity and translation speed, with most cells showing mixed selectivity for both variables. Finally, marmosets lack the rhythmic theta oscillations of local field potentials seen during locomotion in rats. Instead, they show resetting of theta oscillations triggered by head-gaze shifts that co-occurred with the activation of inhibitory interneurons, followed by various modulations in the activity of pyramidal cells. Our results show that the marmoset visual exploration/navigation strategies and the hippocampal neuronal specializations supporting them diverge from those observed in rats, reflecting the far-sensing capabilities of the marmoset visual system adapted to diurnal lifestyle.

neuroscience↗