miR-135a Regulates Synaptic Transmission and Anxiety-Like Behavior in Amygdala

被引:0
作者
Cecilia Mannironi
Antonio Biundo
Samyutha Rajendran
Francesca De Vito
Luana Saba
Silvia Caioli
Cristina Zona
Teresa Ciotti
Silvana Caristi
Emerald Perlas
Giorgia Del Vecchio
Irene Bozzoni
Arianna Rinaldi
Andrea Mele
Carlo Presutti
机构
[1] CNR,Istituto di Biologia e Patologia Molecolari
[2] c/o Sapienza Universita’ di Roma,Dipartimento di Biologia e Biotecnologie “Charles Darwin”
[3] Sapienza Universita’ di Roma,Istituto di Biologia Cellulare e Neurobiologia
[4] CNR,Centro di Ricerca in Neurobiologia “D. Bovet”
[5] Sapienza Universita’ di Roma,Dipartimento di Medicina dei Sistemi
[6] Fondazione Santa Lucia,Mouse Biology Unit
[7] I.R.C.C.S,undefined
[8] Universita’ di Roma “Tor Vergata”,undefined
[9] European Molecular Biology Laboratory (EMBL),undefined
来源
Molecular Neurobiology | 2018年 / 55卷
关键词
miR-135a; microRNAs; Post-transcriptional regulation; Synaptic activity; Synaptic transmission; Stress-related disease; Amygdala;
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摘要
MicroRNAs are a class of non-coding RNAs with a growing relevance in the regulation of gene expression related to brain function and plasticity. They have the potential to orchestrate complex phenomena, such as the neuronal response to homeostatic challenges. We previously demonstrated the involvement of miR-135a in the regulation of early stress response. In the present study, we examine the role of miR-135a in stress-related behavior. We show that the knockdown (KD) of miR-135a in the mouse amygdala induces an increase in anxiety-like behavior. Consistently with behavioral studies, electrophysiological experiments in acute brain slices indicate an increase of amygdala spontaneous excitatory postsynaptic currents, as a result of miR-135a KD. Furthermore, we presented direct evidences, by in vitro assays and in vivo miRNA overexpression in the amygdala, that two key regulators of synaptic vesicle fusion, complexin-1 and complexin-2, are direct targets of miR-135a. In vitro analysis of miniature excitatory postsynaptic currents on miR-135a KD primary neurons indicates unpaired quantal excitatory neurotransmission. Finally, increased levels of complexin-1 and complexin-2 proteins were detected in the mouse amygdala after acute stress, accordingly to the previously observed stress-induced miR-135a downregulation. Overall, our results unravel a previously unknown miRNA-dependent mechanism in the amygdala for regulating anxiety-like behavior, providing evidences of a physiological role of miR-135a in the modulation of presynaptic mechanisms of glutamatergic neurotransmission.
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页码:3301 / 3315
页数:14
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