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Bakir, A. K.

Publications and source records attributed to Bakir, A. K..

2 recordsLinked to original sources

Generalization and extinction of learned fear alter primary sensory input to the brain

Neuroplasticity in sensory systems permits the brain to refine sensory discrimination between threat-predictive and neutral stimuli, but dysfunctional sensory plasticity might underlie maladaptive fear generalization. Using an odor-cued fear conditioning paradigm designed to induce broad fear generalization in a mouse model, we found that odor-evoked synaptic output from olfactory nerve into the brains olfactory bulb was greatly increased not only for the original threat-predictive odor but also for novel odors that evoked generalized fear, even under anesthesia. Extinction training in which the threat-predictive odor was presented repeatedly without aversive stimulation reversed the behavioral fear and the increased olfactory nerve output evoked by the threat predictive odor. Extinction training also reversed the generalization of fear and enhanced neurophysiological response to new odors, as did alternative extinction paradigms using novel odorants, thus showing that the output of the olfactory nerve also parallels the generalization of extinction learning. Taken together the increased primary olfactory signaling evoked by fear-evoking odors and the reversal of this increase when the mouse is no longer afraid of an odor suggests that the olfactory nerve plasticity matches the mouses perception of threat, even for olfactory stimuli and neuronal populations that have never actually been paired with shock. It is surprising that such beliefs about odor-shock contingencies would manifest as early as the synaptic input from the nose to the brain. This sensory plasticity might contribute to maladaptive generalization of fear such as in post-traumatic syndrome and generalized anxiety disorder.

neuroscience↗

A method for assessing approach and avoidance behavior across multiple olfactory stimuli in mice including multivariate hypothesis comparisons

Approach and avoidance behavior towards sensory stimuli serve as powerful behavioral readouts of our mental representations of the external world and our expectations and motivations in navigating it. In the olfactory system, approach or avoidance of odors statistically associated with people, places, and things relate to ecologically critical functions like feeding, fear, and reproduction. However, experimental methods for quantifying approach/avoidance behavior in relative terms across odors have been limited. Here we present a novel method for quantifying mouse approach/avoidance in an open field arena scented with up to four odors simultaneously. In lieu of traditional inferential statistics (which greatly limit the information that can be learned in this multivariate experiment), we demonstrate the a priori definition of quantitative hypotheses for the distribution of time among scented corners and the use of information theory-derived statistical metrics to quantify the relative likelihood of each competing hypothesis given the data collected. Finally, we use data from a fear conditioning experiment to demonstrate the application of this method to conclude that fear conditioned mice exhibit a fear generalization gradient that decreases as odorants become more different from the threat-predictive odorant, as opposed to competing hypotheses that mice are specifically avoiding the threat-predictive odorant or have overgeneralized their fear and avoid all test odors regardless of similarity. Critically, this method takes only a few minutes per animal with no prior behavioral training required, and it can be performed easily without automated apparatus.

animal behavior and cognition↗