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References
54
[1]
Eichenbaum, H. Still searching for the engram. Learn. Behav. 44, 209–222 (2016). 10.3758/s13420-016-0218-1
[2]
Josselyn, S. A., Kohler, S. & Frankland, P. W. Finding the engram. Nat. Rev. Neurosci. 16, 521–534 (2015). 10.1038/nrn4000
[3]
Tonegawa, S., Liu, X., Ramirez, S. & Redondo, R. Memory engram cells have come of age. Neuron 87, 918–931 (2015). 10.1016/j.neuron.2015.08.002
[4]
Martin, S. J. & Morris, R. G. New life in an old idea: the synaptic plasticity and memory hypothesis revisited. Hippocampus 12, 609–636 (2002). 10.1002/hipo.10107
[5]
Buck, L. & Axel, R. A novel multigene family may encode odorant receptors: a molecular basis for odor recognition. Cell 65, 175–187 (1991). 10.1016/0092-8674(91)90418-x
[6]
Buck, L. B. The molecular architecture of odor and pheromone sensing in mammals. Cell 100, 611–618 (2000). 10.1016/s0092-8674(00)80698-4
[7]
How the olfactory system makes sense of scents

Stuart Firestein

Nature 2001 10.1038/35093026
[8]
Mombaerts, P. et al. Visualizing an olfactory sensory map. Cell 87, 675–686 (1996). 10.1016/s0092-8674(00)81387-2
[9]
Ressler, K. J., Sullivan, S. L. & Buck, L. B. Information coding in the olfactory system: evidence for a stereotyped and highly organized epitope map in the olfactory bulb. Cell 79, 1245–1255 (1994). 10.1016/0092-8674(94)90015-9
[10]
Wang, F., Nemes, A., Mendelsohn, M. & Axel, R. Odorant receptors govern the formation of a precise topographic map. Cell 93, 47–60 (1998). 10.1016/s0092-8674(00)81145-9
[11]
Jones, S. V., Choi, D. C., Davis, M. & Ressler, K. J. Learning-dependent structural plasticity in the adult olfactory pathway. J. Neurosci. 28, 13106–13111 (2008). 10.1523/jneurosci.4465-08.2008
[12]
Morrison, F. G., Dias, B. G. & Ressler, K. J. Extinction reverses olfactory fear-conditioned increases in neuron number and glomerular size. Proc. Natl Acad. Sci. USA 112, 12846–12851 (2015). 10.1073/pnas.1505068112
[13]
Jiang, Y. et al. Molecular profiling of activated olfactory neurons identifies odorant receptors for odors in vivo. Nat. Neurosci. 18, 1446–1454 (2015). 10.1038/nn.4104
[14]
Smear, M., Resulaj, A., Zhang, J., Bozza, T. & Rinberg, D. Multiple perceptible signals from a single olfactory glomerulus. Nat. Neurosci. 16, 1687–1691 (2013). 10.1038/nn.3519
[15]
Input-specific control of reward and aversion in the ventral tegmental area

Stephan Lammel, Byung Kook Lim, Chen Ran et al.

Nature 2012 10.1038/nature11527
[16]
Cousens, G. & Otto, T. Both pre- and posttraining excitotoxic lesions of the basolateral amygdala abolish the expression of olfactory and contextual fear conditioning. Behav. Neurosci. 112, 1092–1103 (1998). 10.1037/0735-7044.112.5.1092
[17]
Thompson, K. J. et al. DREADD agonist 21 (C21) is an effective agonist for muscarinic based DREADDs in vitro and in vivo. ACS Pharmacol. Transl Sci. 1, 61–72 (2018). 10.1021/acsptsci.8b00012
[18]
Walker, D. L., Paschall, G. Y. & Davis, M. Glutamate receptor antagonist infusions into the basolateral and medial amygdala reveal differential contributions to olfactory vs. context fear conditioning and expression. Learn. Mem. 12, 120–129 (2005). 10.1101/lm.87105
[19]
Cowansage, K. K. et al. Direct reactivation of a coherent neocortical memory of context. Neuron 84, 432–441 (2014). 10.1016/j.neuron.2014.09.022
[20]
Gore, F. et al. Neural representations of unconditioned stimuli in basolateral amygdala mediate innate and learned responses. Cell 162, 134–145 (2015). 10.1016/j.cell.2015.06.027
[21]
Liu, X. et al. Optogenetic stimulation of a hippocampal engram activates fear memory recall. Nature 484, 381–385 (2012). 10.1038/484410a
[22]
Yiu, A. P. et al. Neurons are recruited to a memory trace based on relative neuronal excitability immediately before training. Neuron 83, 722–735 (2014). 10.1016/j.neuron.2014.07.017
[23]
Denny, C. A. et al. Hippocampal memory traces are differentially modulated by experience, time, and adult neurogenesis. Neuron 83, 189–201 (2014). 10.1016/j.neuron.2014.05.018
[24]
Cortical Representations Are Reinstated by the Hippocampus during Memory Retrieval

Kazumasa Z. Tanaka, Aleksandr Pevzner, Anahita B. Hamidi et al.

Neuron 2014 10.1016/j.neuron.2014.09.037
[25]
Competition between engrams influences fear memory formation and recall

Asim J. Rashid, Chen Yan, Valentina Mercaldo et al.

Science 2016 10.1126/science.aaf0594
[26]
Creating a False Memory in the Hippocampus

Steve Ramirez, Xingguo Liu, Pei-Ann Lin et al.

Science 2013 10.1126/science.1239073
[27]
Bidirectional switch of the valence associated with a hippocampal contextual memory engram

Roger L. Redondo, Joshua Kim, Autumn L. Arons et al.

Nature 2014 10.1038/nature13725
[28]
Ohkawa, N. et al. Artificial association of pre-stored information to generate a qualitatively new memory. Cell Rep. 11, 261–269 (2015). 10.1016/j.celrep.2015.03.017
[29]
Dudai, Y. in Science of Memory: Concepts (eds Roediger, H. L. III, Dudai, Y. & Fitzpatrick, S. M.) 13–16 (Oxford Univ. Press, 2007).
[30]
Shinkman, P. G., Swain, R. A. & Thompson, R. F. Classical conditioning with electrical stimulation of cerebellum as both conditioned and unconditioned stimulus. Behav. Neurosci. 110, 914–921 (1996). 10.1037/0735-7044.110.5.914
[31]
Steinmetz, J. E., Lavond, D. G. & Thompson, R. F. Classical conditioning in rabbits using pontine nucleus stimulation as a conditioned stimulus and inferior olive stimulation as an unconditioned stimulus. Synapse 3, 225–233 (1989). 10.1002/syn.890030308
[32]
Hegoburu, C., Parrot, S., Ferreira, G. & Mouly, A. M. Differential involvement of amygdala and cortical NMDA receptors activation upon encoding in odor fear memory. Learn. Mem. 21, 651–655 (2014). 10.1101/lm.036558.114
[33]
Sevelinges, Y., Gervais, R., Messaoudi, B., Granjon, L. & Mouly, A. M. Olfactory fear conditioning induces field potential potentiation in rat olfactory cortex and amygdala. Learn. Mem. 11, 761–769 (2004). 10.1101/lm.83604
[34]
McGann, J. P. Associative learning and sensory neuroplasticity: how does it happen and what is it good for? Learn. Mem. 22, 567–576 (2015). 10.1101/lm.039636.115
[35]
Herry, C. & Johansen, J. P. Encoding of fear learning and memory in distributed neuronal circuits. Nat. Neurosci. 17, 1644–1654 (2014). 10.1038/nn.3869
[36]
Ozawa, T. et al. A feedback neural circuit for calibrating aversive memory strength. Nat. Neurosci. 20, 90–97 (2017). 10.1038/nn.4439
[37]
Di Scala, G., Mana, M. J., Jacobs, W. J. & Phillips, A. G. Evidence of Pavlovian conditioned fear following electrical stimulation of the periaqueductal grey in the rat. Physiol. Behav. 40, 55–63 (1987). 10.1016/0031-9384(87)90185-5
[38]
Kim, E. J. et al. Dorsal periaqueductal gray–amygdala pathway conveys both innate and learned fear responses in rats. Proc. Natl Acad. Sci USA 110, 14795–14800 (2013). 10.1073/pnas.1310845110
[39]
Han, S., Soleiman, M. T., Soden, M. E., Zweifel, L. S. & Palmiter, R. D. Elucidating an affective pain circuit that creates a threat memory. Cell 162, 363–374 (2015). 10.1016/j.cell.2015.05.057
[40]
Sato, M. et al. The lateral parabrachial nucleus is actively involved in the acquisition of fear memory in mice. Mol. Brain 8, 22 (2015). 10.1186/s13041-015-0108-z
[41]
Tang, J. et al. Pavlovian fear memory induced by activation in the anterior cingulate cortex. Mol. Pain 1, 6 (2005). 10.1186/1744-8069-1-6
[42]
Johansen, J. P. & Fields, H. L. Glutamatergic activation of anterior cingulate cortex produces an aversive teaching signal. Nat. Neurosci. 7, 398–403 (2004). 10.1038/nn1207
[43]
Optogenetic investigation of neural circuits underlying brain disease in animal models

Kay M. Tye, Karl Deisseroth

Nature Reviews Neuroscience 2012 10.1038/nrn3171
[44]
Carey, R. M. & Wachowiak, M. Effect of sniffing on the temporal structure of mitral/tufted cell output from the olfactory bulb. J. Neurosci. 31, 10615–10626 (2011). 10.1523/jneurosci.1805-11.2011
[45]
Doucette, W. et al. Associative cortex features in the first olfactory brain relay station. Neuron 69, 1176–1187 (2011). 10.1016/j.neuron.2011.02.024
[46]
Rojas-Libano, D. & Kay, L. M. Interplay between sniffing and odorant sorptive properties in the rat. J. Neurosci. 32, 15577–15589 (2012). 10.1523/jneurosci.1464-12.2012
[47]
Shusterman, R., Smear, M. C., Koulakov, A. A. & Rinberg, D. Precise olfactory responses tile the sniff cycle. Nat. Neurosci. 14, 1039–1044 (2011). 10.1038/nn.2877
[48]
Wesson, D. W., Donahou, T. N., Johnson, M. O. & Wachowiak, M. Sniffing behavior of mice during performance in odor-guided tasks. Chem. Senses 33, 581–596 (2008). 10.1093/chemse/bjn029
[49]
Kepecs, A., Uchida, N. & Mainen, Z. F. The sniff as a unit of olfactory processing. Chem. Senses 31, 167–179 (2006). 10.1093/chemse/bjj016
[50]
Vetere, G. et al. Chemogenetic interrogation of a brain-wide fear memory network in mice. Neuron 94, 363–374 (2017). 10.1016/j.neuron.2017.03.037

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