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Donahue, M. M.

Publications and source records attributed to Donahue, M. M..

4 recordsLinked to original sources

Reward-tethered place cells support flexible magnitude coding and remapping in the hippocampus

Learning to navigate a changing environment requires the ability to detect when a reward no longer matches a previous expectation. While the hippocampus is essential for adapting behavior strategies when reward expectations are violated and is known to integrate goal-related information into spatial maps, the precise dynamics by which these maps update during an unexpected reduction in reward magnitude is not well understood. Using longitudinal calcium imaging of neuronal activity in behaving mice, we found that hippocampal CA1 population activity encodes reward magnitude through elevated event rates at high value locations. Within this population, we discovered a specialized group of reward tethered place cells that bind spatial context to reward magnitude. These reward tethered place cells exhibit spatial fields across the environment while simultaneously exhibiting activity anchored to high-value reward locations. Upon reward reduction, CA1 population activity equalizes and these neurons undergo a selective and rapid remapping that precedes behavioral adjustment to the reward downshift. The broader spatial map remains intact, indicating that this change allows the animal to update the value of a goal while preserving a stable representation of its surroundings. This selective reorganization of hippocampal firing patterns could support adaptive decision making by updating internal models of the world when expectations are violated. O_FIG O_LINKSMALLFIG WIDTH=200 HEIGHT=148 SRC="FIGDIR/small/725501v1_ufig1.gif" ALT="Figure 1"> View larger version (66K): org.highwire.dtl.DTLVardef@1725be8org.highwire.dtl.DTLVardef@eff7c1org.highwire.dtl.DTLVardef@72d4b3org.highwire.dtl.DTLVardef@ea3e41_HPS_FORMAT_FIGEXP M_FIG O_FLOATNOGraphical abstract.C_FLOATNO Masala N., Donahue M., etal. C_FIG

neuroscience↗

CA2 neurons show abnormal responses to social stimuli in a rat model of Fragile X syndrome

Fragile X Syndrome (FXS) is a neurodevelopmental disorder that is highly comorbid with autism spectrum disorders and can cause abnormal social behaviors. The CA2 subregion of the hippocampus is essential for social memory processing and social recognition. A social interaction induces changes in CA2 neuronal firing; however, it is unknown whether these changes are impaired in FXS models. Here, we examined CA2 activity in a rat model of Fragile X Syndrome (Fmr1 knockout rats). In Fmr1 knockout rats, we observed impaired CA2 cell responses to social stimuli, despite similar social behaviors. Further, in CA2 of Fmr1 knockout rats, we found reduced expression of oxytocin receptors and impaired whole cell responses to oxytocin. Together, these results raise the possibility that abnormal CA2 activity contributes to impaired social behavior in FXS and may suggest novel treatment targets for FXS patients. Significance statementFragile X Syndrome (FXS) is a neurodevelopmental disorder that can result in abnormal social behaviors, including social avoidance. Activity in the CA2 subregion of the hippocampus is believed to support social recognition and social cognition. Yet, the extent to which the CA2 subregion of the hippocampus is affected by FXS is poorly understood. In this study, we identified specific impairments in CA2 neuronal responses to social stimuli in a rat model of FXS. Further, we provide evidence suggesting that CA2 responses to oxytocin, a neuropeptide released during social interactions, are abnormal in FXS.

neuroscience↗

Hippocampal place cell sequences are impaired in a rat model of Fragile X Syndrome

Fragile X Syndrome (FXS) is a neurodevelopmental disorder that can cause impairments in spatial cognition and memory. The hippocampus is thought to support spatial cognition through the activity of place cells, neurons with spatial receptive fields. Coordinated firing of place cell populations is organized by different oscillatory patterns in the hippocampus during specific behavioral states. Theta rhythms organize place cell populations during awake exploration. Sharp wave-ripples organize place cell population reactivation during waking rest. Here, we examined the coordination of CA1 place cell populations during active behavior and subsequent rest in a rat model of FXS (Fmr1 knockout rats). While the organization of individual place cells by the theta rhythm was normal, the coordinated activation of sequences of place cells during individual theta cycles was impaired in Fmr1 knockout rats. Further, the subsequent replay of place cell sequences was impaired during waking rest following active exploration. Together, these results expand our understanding of how genetic modifications that model those observed in FXS affect hippocampal physiology and suggest a potential mechanism underlying impaired spatial cognition in FXS. Significance StatementFragile X Syndrome (FXS) is a neurodevelopmental disorder that can cause impaired memory and atypical spatial behaviors such as "elopement" (i.e., wandering off and becoming lost). Activity in the CA1 subregion of the hippocampus supports spatial memory and spatial cognition, making it an important candidate to study in the context of FXS; however, how neuronal population activity in CA1 is affected by FXS is poorly understood. In this study, we found that the coordination of populations of CA1 neurons during active behavior and waking rest was impaired in a rat model of FXS. These results reveal hippocampal physiological deficits that may contribute to cognitive impairments in FXS.

neuroscience↗

Social odors drive hippocampal CA2 place cell responses to social stimuli

Hippocampal region CA2 is essential for social memory processing. Interaction with social stimuli induces changes in CA2 place cell firing during active exploration and sharp wave-ripples during rest following a social interaction. However, it is unknown whether these changes in firing patterns are caused by integration of multimodal social stimuli or by a specific sensory modality associated with a social interaction. Rodents rely heavily on chemosensory cues in the form of olfactory signals for social recognition processes. To determine the extent to which social olfactory signals contribute to CA2 place cell responses to social stimuli, we recorded CA2 place cells in rats freely exploring environments containing stimuli that included or lacked olfactory content. We found that CA2 place cell firing patterns significantly changed only when social odors were prominent. Also, place cells that increased their firing in the presence of social odors alone preferentially increased their firing during subsequent sharp wave-ripples. Our results suggest that social olfactory cues are essential for changing CA2 place cell firing patterns during and after social interactions. These results support prior work suggesting CA2 performs social functions and shed light on processes underlying CA2 responses to social stimuli.

neuroscience↗