@phdthesis{837,
  abstract     = {The hippocampus is a key brain region for memory and notably for spatial memory, and is needed for both spatial working and reference memories. Hippocampal place cells selectively discharge in specific locations of the environment to form mnemonic represen tations of space. Several behavioral protocols have been designed to test spatial memory which requires the experimental subject to utilize working memory and reference memory. However, less is known about how these memory traces are presented in the hippo campus, especially considering tasks that require both spatial working and long -term reference memory demand. The aim of my thesis was to elucidate how spatial working memory, reference memory, and the combination of both are represented in the hippocampus. In this thesis, using a radial eight -arm maze, I examined how the combined demand on these memories influenced place cell assemblies while reference memories were partially updated by changing some of the reward- arms. This was contrasted with task varian ts requiring working or reference memories only. Reference memory update led to gradual place field shifts towards the rewards on the switched arms. Cells developed enhanced firing in passes between newly -rewarded arms as compared to those containing an unchanged reward. The working memory task did not show such gradual changes. Place assemblies on occasions replayed trajectories of the maze; at decision points the next arm choice was preferentially replayed in tasks needing reference memory while in the pure working memory task the previously visited arm was replayed. Hence trajectory replay only reflected the decision of the animal in tasks needing reference memory update. At the reward locations, in all three tasks outbound trajectories of the current arm were preferentially replayed, showing the animals’ next path to the center. At reward locations trajectories were replayed preferentially in reverse temporal order. Moreover, in the center reverse replay was seen in the working memory task but in the other tasks forward replay was seen. Hence, the direction of reactivation was determined by the goal locations so that part of the trajectory which was closer to the goal was reactivated later in an HSE while places further away from the goal were reactivated earlier. Altogether my work demonstrated that reference memory update triggers several levels of reorganization of the hippocampal cognitive map which are not seen in simpler working memory demand s. Moreover, hippocampus is likely to be involved in spatial decisions through reactivating planned trajectories when reference memory recall is required for such a decision. },
  author       = {Xu, Haibing},
  issn         = {2663-337X},
  pages        = {93},
  publisher    = {Institute of Science and Technology Austria},
  title        = {{Reactivation of the hippocampal cognitive map in goal-directed spatial tasks}},
  doi          = {10.15479/AT:ISTA:th_858},
  year         = {2017},
}

@article{993,
  abstract     = {In real-world applications, observations are often constrained to a small fraction of a system. Such spatial subsampling can be caused by the inaccessibility or the sheer size of the system, and cannot be overcome by longer sampling. Spatial subsampling can strongly bias inferences about a system’s aggregated properties. To overcome the bias, we derive analytically a subsampling scaling framework that is applicable to different observables, including distributions of neuronal avalanches, of number of people infected during an epidemic outbreak, and of node degrees. We demonstrate how to infer the correct distributions of the underlying full system, how to apply it to distinguish critical from subcritical systems, and how to disentangle subsampling and finite size effects. Lastly, we apply subsampling scaling to neuronal avalanche models and to recordings from developing neural networks. We show that only mature, but not young networks follow power-law scaling, indicating self-organization to criticality during development.},
  author       = {Levina (Martius), Anna and Priesemann, Viola},
  issn         = {2041-1723},
  journal      = {Nature Communications},
  publisher    = {Nature Publishing Group},
  title        = {{Subsampling scaling}},
  doi          = {10.1038/ncomms15140},
  volume       = {8},
  year         = {2017},
}

@article{1279,
  abstract     = {During hippocampal sharp wave/ripple (SWR) events, previously occurring, sensory inputdriven neuronal firing patterns are replayed. Such replay is thought to be important for plasticity- related processes and consolidation of memory traces. It has previously been shown that the electrical stimulation-induced disruption of SWR events interferes with learning in rodents in different experimental paradigms. On the other hand, the cognitive map theory posits that the plastic changes of the firing of hippocampal place cells constitute the electrophysiological counterpart of the spatial learning, observable at the behavioral level. Therefore, we tested whether intact SWR events occurring during the sleep/rest session after the first exploration of a novel environment are needed for the stabilization of the CA1 code, which process requires plasticity. We found that the newly-formed representation in the CA1 has the same level of stability with optogenetic SWR blockade as with a control manipulation that delivered the same amount of light into the brain. Therefore our results suggest that at least in the case of passive exploratory behavior, SWR-related plasticity is dispensable for the stability of CA1 ensembles.},
  author       = {Kovács, Krisztián and O'Neill, Joseph and Schönenberger, Philipp and Penttonen, Markku and Rangel Guerrero, Dámaris K and Csicsvari, Jozsef L},
  journal      = {PLoS One},
  number       = {10},
  publisher    = {Public Library of Science},
  title        = {{Optogenetically blocking sharp wave ripple events in sleep does not interfere with the formation of stable spatial representation in the CA1 area of the hippocampus}},
  doi          = {10.1371/journal.pone.0164675},
  volume       = {11},
  year         = {2016},
}

@article{1334,
  abstract     = {Hippocampal neurons encode a cognitive map of space. These maps are thought to be updated during learning and in response to changes in the environment through activity-dependent synaptic plasticity. Here we examine how changes in activity influence spatial coding in rats using halorhodopsin-mediated, spatially selective optogenetic silencing. Halorhoposin stimulation leads to light-induced suppression in many place cells and interneurons; some place cells increase their firing through disinhibition, whereas some show no effect. We find that place fields of the unaffected subpopulation remain stable. On the other hand, place fields of suppressed place cells were unstable, showing remapping across sessions before and after optogenetic inhibition. Disinhibited place cells had stable maps but sustained an elevated firing rate. These findings suggest that place representation in the hippocampus is constantly governed by activity-dependent processes, and that disinhibition may provide a mechanism for rate remapping.},
  author       = {Schönenberger, Philipp and O'Neill, Joseph and Csicsvari, Jozsef L},
  journal      = {Nature Communications},
  publisher    = {Nature Publishing Group},
  title        = {{Activity dependent plasticity of hippocampal place maps}},
  doi          = {10.1038/ncomms11824},
  volume       = {7},
  year         = {2016},
}

@article{1487,
  abstract     = {Rhythms with time scales of multiple cycles per second permeate the mammalian brain, yet neuroscientists are not certain of their functional roles. One leading idea is that coherent oscillation between two brain regions facilitates the exchange of information between them. In rats, the hippocampus and the vibrissal sensorimotor system both are characterized by rhythmic oscillation in the theta range, 5–12 Hz. Previous work has been divided as to whether the two rhythms are independent or coherent. To resolve this question, we acquired three measures from rats—whisker motion, hippocampal local field potential (LFP), and barrel cortex unit firing—during a whisker-mediated texture discrimination task and during control conditions (not engaged in a whisker-mediated memory task). Compared to control conditions, the theta band of hippocampal LFP showed a marked increase in power as the rats approached and then palpated the texture. Phase synchronization between whisking and hippocampal LFP increased by almost 50% during approach and texture palpation. In addition, a greater proportion of barrel cortex neurons showed firing that was phase-locked to hippocampal theta while rats were engaged in the discrimination task. Consistent with a behavioral consequence of phase synchronization, the rats identified the texture more rapidly and with lower error likelihood on trials in which there was an increase in theta-whisking coherence at the moment of texture palpation. These results suggest that coherence between the whisking rhythm, barrel cortex firing, and hippocampal LFP is augmented selectively during epochs in which the rat collects sensory information and that such coherence enhances the efficiency of integration of stimulus information into memory and decision-making centers.},
  author       = {Grion, Natalia and Akrami, Athena and Zuo, Yangfang and Stella, Federico and Diamond, Mathew},
  journal      = {PLoS Biology},
  number       = {2},
  publisher    = {Public Library of Science},
  title        = {{Coherence between rat sensorimotor system and hippocampus is enhanced during tactile discrimination}},
  doi          = {10.1371/journal.pbio.1002384},
  volume       = {14},
  year         = {2016},
}

@article{1663,
  abstract     = {CREB-binding protein (CBP) and p300 are transcriptional coactivators involved in numerous biological processes that affect cell growth, transformation, differentiation, and development. In this study, we provide evidence of the involvement of homeodomain-interacting protein kinase 2 (HIPK2) in the regulation of CBP activity. We show that HIPK2 interacts with and phosphorylates several regions of CBP. We demonstrate that serines 2361, 2363, 2371, 2376, and 2381 are responsible for the HIPK2-induced mobility shift of CBP C-terminal activation domain. Moreover, we show that HIPK2 strongly potentiates the transcriptional activity of CBP. However, our data suggest that HIPK2 activates CBP mainly by counteracting the repressive action of cell cycle regulatory domain 1 (CRD1), located between amino acids 977 and 1076, independently of CBP phosphorylation. Our findings thus highlight a complex regulation of CBP activity by HIPK2, which might be relevant for the control of specific sets of target genes involved in cellular proliferation, differentiation and apoptosis.},
  author       = {Kovács, Krisztián and Steinmann, Myriam and Halfon, Olivier and Magistretti, Pierre and Cardinaux, Jean},
  journal      = {Cellular Signalling},
  number       = {11},
  pages        = {2252 -- 2260},
  publisher    = {Elsevier},
  title        = {{Complex regulation of CREB-binding protein by homeodomain-interacting protein kinase 2}},
  doi          = {10.1016/j.cellsig.2015.08.001},
  volume       = {27},
  year         = {2015},
}

@article{1874,
  abstract     = {The hippocampal region, comprising the hippocampal formation and the parahippocampal region, has been one of the most intensively studied parts of the brain for decades. Better understanding of its functional diversity and complexity has led to an increased demand for specificity in experimental procedures and manipulations. In view of the complex 3D structure of the hippocampal region, precisely positioned experimental approaches require a fine-grained architectural description that is available and readable to experimentalists lacking detailed anatomical experience. In this paper, we provide the first cyto- and chemoarchitectural description of the hippocampal formation and parahippocampal region in the rat at high resolution and in the three standard sectional planes: coronal, horizontal and sagittal. The atlas uses a series of adjacent sections stained for neurons and for a number of chemical marker substances, particularly parvalbumin and calbindin. All the borders defined in one plane have been cross-checked against their counterparts in the other two planes. The entire dataset will be made available as a web-based interactive application through the Rodent Brain WorkBench (http://www.rbwb.org) which, together with this paper, provides a unique atlas resource.},
  author       = {Boccara, Charlotte and Kjønigsen, Lisa and Hammer, Ingvild and Bjaalie, Jan and Leergaard, Trygve and Witter, Menno},
  journal      = {Hippocampus},
  number       = {7},
  pages        = {838 -- 857},
  publisher    = {Wiley},
  title        = {{A three-plane architectonic atlas of the rat hippocampal region}},
  doi          = {10.1002/hipo.22407},
  volume       = {25},
  year         = {2015},
}

@inbook{19994,
  abstract     = {Firing patterns of hippocampal principal cells are thought to participate in the formation of mnemonic representations of place, which ultimately can be used to guide the behavior of animals in space. Past studies have suggested that place-selective activity in the hippocampus can emphasize the representation of discrete locations associated with a strong behavioral salience. In the first part of this book chapter, we review work that has described how that hippocampal neuronal activity patterns reorganize during spatial learning. These studies revealed that new hippocampal maps emerge during spatial learning to represent the location of goal locations and demonstrated that, during recall, the reinstatement of these maps predicts successful memory performance. In the second part of this chapter, we discuss the role of sleep in memory consolidation in the context of goal-oriented spatial learning. We summarize work that has demonstrated the replay of goal-oriented neuronal assembly patterns that predict subsequent memory recall. Moreover, we argue that the initial strengthening of new maps may in fact take place during learning, triggered by waking sharp-wave/ripple patterns occurring at goal locations. These reviewed studies highlight that the reorganization and replay of place cell firing patterns might constitute a circuit signature for the expression of newly acquired hippocampal engrams.},
  author       = {Dupret, David and Csicsvari, Jozsef L},
  booktitle    = {Analysis and Modeling of Coordinated Multi-neuronal Activity},
  isbn         = {9781493919680},
  issn         = {2197-1919},
  publisher    = {Springer Nature},
  title        = {{Reorganization of Hippocampal Place-Selective Patterns During Goal-Directed Learning and Their Reactivation During Sleep}},
  doi          = {10.1007/978-1-4939-1969-7_6},
  volume       = {12},
  year         = {2014},
}

@article{2003,
  abstract     = {Learning can be facilitated by previous knowledge when it is organized into relational representations forming schemas. In this issue of Neuron, McKenzie et al. (2014) demonstrate that the hippocampus rapidly forms interrelated, hierarchical memory representations to support schema-based learning.},
  author       = {O'Neill, Joseph and Csicsvari, Jozsef L},
  journal      = {Neuron},
  number       = {1},
  pages        = {8 -- 10},
  publisher    = {Elsevier},
  title        = {{Learning by example in the hippocampus}},
  doi          = {10.1016/j.neuron.2014.06.013},
  volume       = {83},
  year         = {2014},
}

@article{2004,
  abstract     = {We have assembled a network of cell-fate determining transcription factors that play a key role in the specification of the ventral neuronal subtypes of the spinal cord on the basis of published transcriptional interactions. Asynchronous Boolean modelling of the network was used to compare simulation results with reported experimental observations. Such comparison highlighted the need to include additional regulatory connections in order to obtain the fixed point attractors of the model associated with the five known progenitor cell types located in the ventral spinal cord. The revised gene regulatory network reproduced previously observed cell state switches between progenitor cells observed in knock-out animal models or in experiments where the transcription factors were overexpressed. Furthermore the network predicted the inhibition of Irx3 by Nkx2.2 and this prediction was tested experimentally. Our results provide evidence for the existence of an as yet undescribed inhibitory connection which could potentially have significance beyond the ventral spinal cord. The work presented in this paper demonstrates the strength of Boolean modelling for identifying gene regulatory networks.},
  author       = {Lovrics, Anna and Gao, Yu and Juhász, Bianka and Bock, István and Byrne, Helen and Dinnyés, András and Kovács, Krisztián},
  journal      = {PLoS One},
  number       = {11},
  publisher    = {Public Library of Science},
  title        = {{Boolean modelling reveals new regulatory connections between transcription factors orchestrating the development of the ventral spinal cord}},
  doi          = {10.1371/journal.pone.0111430},
  volume       = {9},
  year         = {2014},
}

@article{2005,
  abstract     = {By eliciting a natural exploratory behavior in rats, head scanning, a study reveals that hippocampal place cells form new, stable firing fields in those locations where the behavior has just occurred.},
  author       = {Dupret, David and Csicsvari, Jozsef L},
  journal      = {Nature Neuroscience},
  number       = {5},
  pages        = {643 -- 644},
  publisher    = {Nature Publishing Group},
  title        = {{Turning heads to remember places}},
  doi          = {10.1038/nn.3700},
  volume       = {17},
  year         = {2014},
}

@misc{9722,
  author       = {Lovrics, Anna and Gao, Yu and Juhász, Bianka and Bock, István and Byrne, Helen M. and Dinnyés, András and Kovács, Krisztián},
  publisher    = {Public Library of Science},
  title        = {{Transition probability between TF expression states when Dbx2 inhibits Nkx2.2}},
  doi          = {10.1371/journal.pone.0111430.s006},
  year         = {2014},
}

@article{2251,
  abstract     = {Sharp wave/ripple (SWR, 150–250 Hz) hippocampal events have long been postulated to be involved in memory consolidation. However, more recent work has investigated SWRs that occur during active waking behaviour: findings that suggest that SWRs may also play a role in cell assembly strengthening or spatial working memory. Do such theories of SWR function apply to animal learning? This review discusses how general theories linking SWRs to memory-related function may explain circuit mechanisms related to rodent spatial learning and to the associated stabilization of new cognitive maps.},
  author       = {Csicsvari, Jozsef L and Dupret, David},
  issn         = {0962-8436},
  journal      = {Philosophical Transactions of the Royal Society of London. Series B, Biological Sciences},
  number       = {1635},
  publisher    = {Royal Society},
  title        = {{Sharp wave/ripple network oscillations and learning-associated hippocampal maps}},
  doi          = {10.1098/rstb.2012.0528},
  volume       = {369},
  year         = {2014},
}

@inproceedings{2276,
  abstract     = {The problem of minimizing the Potts energy function frequently occurs in computer vision applications. One way to tackle this NP-hard problem was proposed by Kovtun [19, 20]. It identifies a part of an optimal solution by running k maxflow computations, where k is the number of labels. The number of “labeled” pixels can be significant in some applications, e.g. 50-93% in our tests for stereo. We show how to reduce the runtime to O (log k) maxflow computations (or one parametric maxflow computation). Furthermore, the output of our algorithm allows to speed-up the subsequent alpha expansion for the unlabeled part, or can be used as it is for time-critical applications. To derive our technique, we generalize the algorithm of Felzenszwalb et al. [7] for Tree Metrics . We also show a connection to k-submodular functions from combinatorial optimization, and discuss k-submodular relaxations for general energy functions.},
  author       = {Gridchyn, Igor and Kolmogorov, Vladimir},
  location     = {Sydney, Australia},
  pages        = {2320 -- 2327},
  publisher    = {IEEE},
  title        = {{Potts model, parametric maxflow and k-submodular functions}},
  doi          = {10.1109/ICCV.2013.288},
  year         = {2013},
}

@article{2840,
  abstract     = {It is known that the entorhinal cortex plays a crucial role in spatial cognition in rodents. Neuroanatomical and electrophysiological data suggest that there is a functional distinction between 2 subregions within the entorhinal cortex, the medial entorhinal cortex (MEC), and the lateral entorhinal cortex (LEC). Rats with MEC or LEC lesions were trained in 2 navigation tasks requiring allothetic (water maze task) or idiothetic (path integration) information processing and 2-object exploration tasks allowing testing of spatial and nonspatial processing of intramaze objects. MEC lesions mildly affected place navigation in the water maze and produced a path integration deficit. They also altered the processing of spatial information in both exploration tasks while sparing the processing of nonspatial information. LEC lesions did not affect navigation abilities in both the water maze and the path integration tasks. They altered spatial and nonspatial processing in the object exploration task but not in the one-trial recognition task. Overall, these results indicate that the MEC is important for spatial processing and path integration. The LEC has some influence on both spatial and nonspatial processes, suggesting that the 2 kinds of information interact at the level of the EC.},
  author       = {Van Cauter, Tiffany and Camon, Jeremy and Alvernhe, Alice and Elduayen, Coralie and Sargolini, Francesca and Save, Étienne},
  journal      = {Cerebral Cortex},
  number       = {2},
  pages        = {451 -- 459},
  publisher    = {Oxford University Press},
  title        = {{Distinct roles of medial and lateral entorhinal cortex in spatial cognition}},
  doi          = {10.1093/cercor/bhs033},
  volume       = {23},
  year         = {2013},
}

@article{2845,
  abstract     = {At synapses formed between dissociated neurons, about half of all synaptic vesicles are refractory to evoked release, forming the so-called &quot;resting pool.&quot; Here, we use optical measurements of vesicular pH to study developmental changes in pool partitioning and vesicle cycling in cultured hippocampal slices. Two-photon imaging of a genetically encoded two-color release sensor (ratio-sypHy) allowed us to perform calibrated measurements at individual Schaffer collateral boutons. Mature boutons released a large fraction of their vesicles during simulated place field activity, and vesicle retrieval rates were 7-fold higher compared to immature boutons. Saturating stimulation mobilized essentially all vesicles at mature synapses. Resting pool formation and a concomitant reduction in evoked release was induced by chronic depolarization but not by acute inhibition of the protein phosphatase calcineurin. We conclude that synapses in CA1 undergo a prominent refinement of vesicle use during early postnatal development that is not recapitulated in dissociated neuronal culture.},
  author       = {Rose, Tobias and Schönenberger, Philipp and Jezek, Karel and Oertner, Thomas},
  journal      = {Neuron},
  number       = {6},
  pages        = {1109 -- 1121},
  publisher    = {Elsevier},
  title        = {{Developmental refinement of vesicle cycling at Schaffer collateral synapses}},
  doi          = {10.1016/j.neuron.2013.01.021},
  volume       = {77},
  year         = {2013},
}

@article{2860,
  abstract     = {In the hippocampus, cell assemblies forming mnemonic representations of space are thought to arise as a result of changes in functional connections of pyramidal cells. We have found that CA1 interneuron circuits are also reconfigured during goal-oriented spatial learning through modification of inputs from pyramidal cells. As learning progressed, new pyramidal assemblies expressed in theta cycles alternated with previously established ones, and eventually overtook them. The firing patterns of interneurons developed a relationship to new, learning-related assemblies: some interneurons associated their activity with new pyramidal assemblies while some others dissociated from them. These firing associations were explained by changes in the weight of monosynaptic inputs received by interneurons from new pyramidal assemblies, as these predicted the associational changes. Spatial learning thus engages circuit modifications in the hippocampus that incorporate a redistribution of inhibitory activity that might assist in the segregation of competing pyramidal cell assembly patterns in space and time.},
  author       = {Dupret, David and O'Neill, Joseph and Csicsvari, Jozsef L},
  journal      = {Neuron},
  number       = {1},
  pages        = {166 -- 180},
  publisher    = {Elsevier},
  title        = {{Dynamic reconfiguration of hippocampal interneuron circuits during spatial learning}},
  doi          = {10.1016/j.neuron.2013.01.033},
  volume       = {78},
  year         = {2013},
}

@article{476,
  abstract     = {Maternal exposure to infection occurring mid-gestation produces a three-fold increase in the risk of schizophrenia in the offspring. The critical initiating factor appears to be the maternal immune activation (MIA) that follows infection. This process can be induced in rodents by exposure of pregnant dams to the viral mimic Poly I:C, which triggers an immune response that results in structural, functional, behavioral, and electrophysiological phenotypes in the adult offspring that model those seen in schizophrenia. We used this model to explore the role of synchronization in brain neural networks, a process thought to be dysfunctional in schizophrenia and previously associated with positive, negative, and cognitive symptoms of schizophrenia. Exposure of pregnant dams to Poly I:C on GD15 produced an impairment in long-range neural synchrony in adult offspring between two regions implicated in schizophrenia pathology; the hippocampus and the medial prefrontal cortex (mPFC). This reduction in synchrony was ameliorated by acute doses of the antipsychotic clozapine. MIA animals have previously been shown to have impaired pre-pulse inhibition (PPI), a gold-standard measure of schizophrenia-like deficits in animal models. Our data showed that deficits in synchrony were positively correlated with the impairments in PPI. Subsequent analysis of LFP activity during the PPI response also showed that reduced coupling between the mPFC and the hippocampus following processing of the pre-pulse was associated with reduced PPI. The ability of the MIA intervention to model neurodevelopmental aspects of schizophrenia pathology provides a useful platform from which to investigate the ontogeny of aberrant synchronous processes. Further, the way in which the model expresses translatable deficits such as aberrant synchrony and reduced PPI will allow researchers to explore novel intervention strategies targeted to these changes. },
  author       = {Dickerson, Desiree and Bilkey, David},
  journal      = {Frontiers in Behavioral Neuroscience},
  number       = {DEC},
  publisher    = {Frontiers Research Foundation},
  title        = {{Aberrant neural synchrony in the maternal immune activation model: Using translatable measures to explore targeted interventions}},
  doi          = {10.3389/fnbeh.2013.00217},
  volume       = {7},
  year         = {2013},
}

@article{2949,
  author       = {Dupret, David and Csicsvari, Jozsef L},
  journal      = {Nature Neuroscience},
  number       = {11},
  pages        = {1471 -- 1472},
  publisher    = {Nature Publishing Group},
  title        = {{The medial entorhinal cortex keeps Up}},
  doi          = {10.1038/nn.3245},
  volume       = {15},
  year         = {2012},
}

@article{2958,
  abstract     = {The activity of hippocampal pyramidal cells reflects both the current position of the animal and information related to its current behavior. Here we investigated whether single hippocampal neurons can encode several independent features defining trials during a memory task. We also tested whether task-related information is represented by partial remapping of the place cell population or, instead, via firing rate modulation of spatially stable place cells. To address these two questions, the activity of hippocampal neurons was recorded in rats performing a conditional discrimination task on a modified T-maze in which the identity of a food reward guided behavior. When the rat was on the central arm of the maze, the firing rate of pyramidal cells changed depending on two independent factors: (1) the identity of the food reward given to the animal and (2) the previous location of the animal on the maze. Importantly, some pyramidal cells encoded information relative to both factors. This trial-type specific and retrospective coding did not interfere with the spatial representation of the maze: hippocampal cells had stable place fields and their theta-phase precession profiles were unaltered during the task, indicating that trial-related information was encoded via rate remapping. During error trials, encoding of both trial-related information and spatial location was impaired. Finally, we found that pyramidal cells also encode trial-related information via rate remapping during the continuous version of the rewarded alternation task without delays. These results suggest that hippocampal neurons can encode several task-related cognitive aspects via rate remapping.},
  author       = {Allen, Kevin and Rawlins, J Nick and Bannerman, David and Csicsvari, Jozsef L},
  journal      = {Journal of Neuroscience},
  number       = {42},
  pages        = {14752 -- 14766},
  publisher    = {Society for Neuroscience},
  title        = {{Hippocampal place cells can encode multiple trial-dependent features through rate remapping}},
  doi          = {10.1523/JNEUROSCI.6175-11.2012},
  volume       = {32},
  year         = {2012},
}

