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Diniz, C.

Publications and source records attributed to Diniz, C..

2 recordsLinked to original sources

Mutation in the TRKB cholesterol recognition site that blocks antidepressant binding does not influence the basal or BDNF-stimulated activation of TRKB

Brain-derived neurotrophic factor (BDNF) acting upon its receptor Neurotrophic tyrosine kinase receptor 2 (NTRK2, TRKB) plays a central role in the development and maintenance of synaptic function and activity- or drug-induced plasticity. TRKB possesses an inverted cholesterol-recognition and alignment consensus sequence (CARC), suggesting this receptor can act as a cholesterol sensor. We have recently shown that antidepressants drugs directly bind to the CARC domain of TRKB dimers, and that this binding as well as biochemical and behavioral responses to antidepressants are lost with a mutation in the TRKB CARC motif (Y433F). However, it is not clear if this mutation can also compromise the receptor function and lead to behavioral alterations. Here, we observed that Y433F mutation does not alter BDNF binding to TRKB, or BDNF-induced dimerization of TRKB. In this line, primary cultures from embryos of heterozygous Y433F mutant mice (hTRKB.Y433F) are responsive to BDNF-induced activation of TRKB, and samples from adult mice do not show any difference on TRKB activation compared to wild-type littermates (TRKB.wt). The behavioral phenotype of hTRKB.Y433F mice is indistinguishable from the wild-type mice in cued fear conditioning, contextual discrimination task or the elevated plus maze, whereas mice heterozygous to BDNF null allele show a phenotype in context discrimination task. Taken together, our results indicate that Y433F mutation in the TRKB CARC motif does not show signs of loss-of-function of BDNF responses, while antidepressant binding to TRKB and responses to antidepressants are lost in Y433F mutants, making them an interesting mouse model for antidepressant research.

neuroscience↗

Fluoxetine acts concomitantly on dorsal and ventral hippocampus to Trk-dependently modulate the extinction of fear memory

BackgroundHippocampus can be divided along its longitudinal axis into dorsal and ventral parts. Both are usually committed to modulate different aspects of behavior and stress response. However, it is not clear whether the hippocampal subregions could differently modulate the effect of antidepressant drugs. Since fluoxetine (FLX) effect on extinction of aversive memory is well known to depend on hippocampal BDNF levels, we hypothesized that the hippocampal subregions might play different roles in fluoxetine efficacy in decreasing fear response. MethodWistar rats were fear-cued conditioned and treated chronically with fluoxetine to enhance their subsequent extinction memory. First, FLX effect on BDNF levels was assessed considering the dorsal (dHC) and ventral (vHC) hippocampus apart. Then, K252a (a functional Trk blocker) was infused either into the dHC or vHC to assay its interaction with FLX treatment over the fear response. Next, BDNF was directly infused into either the dHC or vHC to compare its behavioral effects with FLX. Finally, FLX effect on c-Fos expression was evaluated also considering the dHC and vHC apart, along with subareas of amygdala and medial prefrontal cortex. ResultsChronic FLX treatment increased BDNF in the dHC, whereas BDNF was increased in the vHC after acute treatment only. K252a infused after the extinction protocol into either dHC or vHC was able to prevent FLX effect on fear response. BDNF directly infused into the dHC increased fear response, however its administration into the vHC induced an opposite effect. Besides, a negative correlation between the fear response and c-Fos expression was observed after chronic FLX treatment specifically in the dHC CA3/CA1 and vHC CA1/DG. ConclusionBoth dHC and vHC are important for the Trk-dependent FLX effect on extinction memory, although a discrepancy on the fear response was observed with the direct infusion of BDNF into the dHC or vHC.

neuroscience↗