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1 eurons are necessary to mediate KOR-mediated aversive behavior.
2 eward or shock, elicits either appetitive or aversive behavior.
3 n suppressing feeding as <0.1% DEET elicited aversive behavior.
4 oth have a restrictive effect on fearful and aversive behavior.
5 gic (LC-NE) neurons induces anxiety-like and aversive behavior.
6 ons is alone sufficient for anxiety-like and aversive behavior.
7 ted regions implicated in reward-seeking and aversive behaviors.
8 onergic neurons may be sufficient to mediate aversive behaviors.
9 ironmental variables to ultimately fine tune aversive behaviors.
10 cocaine-evoked modifications and drug-driven aversive behaviors.
11 al firing in the NAc is sufficient to induce aversive behaviors.
12 roles in motor coordination, appetitive, and aversive behavior, as well as neuropsychiatric disorders
13  months but not at 7 months and a deficit in aversive behavior at 20 months of age.
14 mine, and neuropeptides in the inhibition of aversive behavior in Caenorhabditis elegans.
15 scue of the KOR-mediated NAc DA response and aversive behavior in DATCre-KOR KO animals.
16  outside the CNS, we used CGRP-induced light-aversive behavior in mice as a measure of migraine-assoc
17  previous error outcomes, predictive of risk-aversive behavior in that trial, and underactive in adol
18 itoneal) injection of CGRP resulted in light-aversive behavior in wild-type CD1 mice similar to avers
19  appetitive motivated behaviors, its role in aversive behavior is controversial.
20 that the neuronal mechanisms of KOR-mediated aversive behavior may include both dopaminergic and sero
21 ion of monoamines and peptides on C. elegans aversive behavior mediated by a pair of polymodal, nocic
22  abolishes the serotonergic sensitization of aversive behavior mediated by the two nociceptive ASH se
23 Tg has been shown to play a critical role in aversive behaviors, particularly those involving behavio
24 ransgenic mice (nestin/hRAMP1) display light-aversive behavior that is greatly enhanced by intracereb
25 swim and inescapable footshock both produced aversive behaviors that were blocked by a kappa-opioid r
26 hways may control a variety of other passive aversive behaviors, their elucidation may help understan
27 ous receptor sites were sufficient for light-aversive behavior, then wild-type mice should also show
28 ed by nlp-3 appear to stimulate ASH-mediated aversive behavior through the neuropeptide receptor-17 (
29 ell elicits robust conditioned and real-time aversive behavior via KOR activation, and in contrast, p

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