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            "name": "interaction of acetylcholine and oxytocin neuromodulation in the hippocampus",
            "description": "<p>A postulated role of subcortical neuromodulators is to control brain states. Mechanisms by which different neuromodulators compete or cooperate at various temporal scales remain an open question. We investigated the interaction of acetylcholine (ACh) and oxytocin (OXT) at slow and fast timescales during various brain states. Although these neuromodulators fluctuated in parallel during NREM packets, transitions from NREM to REM were characterized by a surge of ACh but a continued decrease of OXT. OXT signaling lagged behind ACh. High ACh was correlated with population synchrony and gamma oscillations during active waking, whereas minimum ACh predicts sharp-wave ripples (SPW-Rs). Optogenetic control of ACh and OXT neurons confirmed the active role of these neuromodulators in the observed correlations. Synchronous hippocampal activity consistently reduced OXT activity, whereas inactivation of the lateral septum-hypothalamus path attenuated this effect. Our findings demonstrate how cooperative actions of these neuromodulators allow target circuits to perform specific functions.</p>",
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            "description": "<p>A complex relationship exists between mesoscopic local field potentials (LFP) and single neuron firing. Using laminar recordings from all layers in the primary visual cortex (V1) of the behaving mouse, we quantified this relationship. Depth profiles of unit power and sink-source distributions of LFP provided consistent depth landmarks across animals. Coherence of gamma oscillations (30-100 Hz) and spike-LFP coupling identified six physiological layers and sublayers. Firing rates, burstiness and other features of neurons displayed unique layer and brain state-dependence. The most prominent LFP pattern during waking was a 3&ndash;6 Hz rhythm with characteristic phase preference of spikes across layers, which we consider as an evolutionary precursor of the primate alpha oscillations. Monosynaptic connections among neurons were assessed by spike transmission probability. Spike transmission between principal cells and interneurons was stronger during waking compared to non-REM sleep, but stronger among deep layer excitatory neurons during non-REM. These results bridge mesoscopic LFP and single neuron interactions with laminar structure in V1.</p>",
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            "description": "<p>Multi-unit spiking activity recorded from rat frontal cortex (brain regions mPFC, OFC, ACC, and M2) during wake-sleep episode wherein at least 7 minutes of wake are followed by 20 minutes of sleep. [<a href=\"http://crcns.org/data-sets/fcx/fcx-1/about-fcx-1\">about</a>] This data was recorded using silicon probe electrodes in the frontal cortices of male Long Evans rats between 4-7 months of age. The design was to have no specific behavior, task or stimulus, rather the animal was left alone in it&rsquo;s home cage (which it lives in at all times). Data includes both local field potentials (LFP) and spikes. 11 total animals, 27 recording sessions, 1360 total units recorded, 1121 units considered stable, 995 putative excitatory units and 126 putative inhibitory units. Only recordings including a &ldquo;WAKE-SLEEP&rdquo; episode wherein at least 7 minutes of wake are followed by 20 minutes of sleep. On average 2 such WAKE-SLEEP episodes per recording session. The data is used in the following publication: <a href=\"https://doi.org/10.1016/j.neuron.2016.03.036\">Network Homeostasis and State Dynamics of Neocortical Sleep. Watson BO, Levenstein D, Greene JP, Gelinas JN, Buzs&aacute;ki G.; Neuron. 2016 Apr 27. pii: S0896-6273(16)30056-3. doi: 10.1016/j.neuron.2016.03.036</a>Of note, Table 1 and Supplementary Figure 1 contain histological and overview data as well as definitions of brain states used.</p>",
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            "name": "CRCNS Thalamus: th-1",
            "description": "<p>Extracellular recordings from multi-site silicon probes in the anterior thalamus and subicular formation of freely moving mice. [<a href=\"http://crcns.org/data-sets/thalamus/th-1/about-th-1\">about</a>] The data set contains recordings made from multiple anterior thalamic nuclei, mainly the antero-dorsal (AD) nucleus, and subicular areas, mainly the post-subiculum (PoS), in freely moving mice. Thalamic and subicular electrodes yielding high number of the so-called Head-Direction (HD) cells were likely to be located in the AD nucleus and the PoS, respectively. Electrode placement was confirmed by histology. The data was obtained during 42 recording sessions and includes responses of 720 neurons in the thalamus and 357 neurons in the PoS, in seven animals while they foraged for food in an open environment (53- x 46-cm). &nbsp;Three animals were recorded simultaneously in the thalamus and the PoS (21 sessions). In the four other animals, electrodes were implanted in the anterior thalamus and in the pyramidal layer of the CA1 area of the hippocampus but only to record Local field Potentials (LFPs). The raw (broadband) data was recorded at 20KHz, simultaneously from 64 to 96 channels. &nbsp;The raw data was processed to extract the LFPs and detect spikes. Included in the data set are the following items:</p>\r\n\r\n<ul>\r\n\t<li>Times and waveforms of detected potential spikes.</li>\r\n\t<li>Results of spike sorting.</li>\r\n\t<li>LFPs.</li>\r\n\t<li>The coordinate and direction of the mice head and video files from which the positions were extracted.</li>\r\n\t<li>Metadata tables giving properties of the neurons and characteristics of the recording sessions.</li>\r\n</ul>\r\n\r\n<p>More information is given in document: crcns_th-1_data_description.pdf and in the following publication which&nbsp;is based on this dataset: <a class=\"external-link\" href=\"http://www.nature.com/neuro/journal/vaop/ncurrent/full/nn.3968.html\">Internally organized mechanisms of the head direction sense. Peyrache A, Lacroix MM, Petersen PC, Buzsaki G, Nature Neuroscience. 2015</a></p>",
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            "name": "CRCNS Hippocampus: hc-14",
            "description": "<p>The data set contains simultaneous recordings from 4 rats in the dorsal hippocampus and amygdala (including BLA, CeN and neighboring nuclei and structures such as piriform cortex.) during sleep and behavior. Histological reconstructions are provided as maps with corresponding structure for each electrode shank (8-shank Neuronexus silicon probes) and recording day. The behavior consists of running on a linear track for water rewards. In one location and one direction, an aversive airpuff is delivered. The location and direction change everyday in a pseudo-random manner. Each session consists of a track training session preceded and followed by sleep and rest in the homecage. At the beginning and end of each daily recording, a test is recorded with the animal running a few laps on the track without airpuff. This dataset contains: &ndash; Filtered LFP files at 1250Hz (134 or 166 channels) &ndash; Sorted Spike information as given by the Neuroscope suite, KlustaKwik followed by manual sorting. &ndash; Videos (tracking by LED on the animal&rsquo;s head) and position files. &ndash; Events for ripples, airpuffs and rewards in the Neuroscope format (.evt) &ndash; xml files for channel ordering and descriptions. The data is organized in folders per animal and session (1 session/day). A set of analysis and thorough description of the dataset and methods are described in: <a class=\"external-link\" href=\"http://dx.doi.org/10.1038/nn.4637\">G. Girardeau, I. Inema, G. Buzsaki. Reactivations of emotional memory in the hippocampus-amygdala system during sleep. Nature Neuroscience (2017) doi: 10.1038/nn.4637.</a></p>",
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            "name": "CRCNS Hippocampus: hc-11",
            "description": "<p>Recordings from hippocampal area CA1, PRE, during and POST novel spatial learning. [<a href=\"http://crcns.org/data-sets/hc/hc-11/about-hc-11\">about</a>] This data set is composed of eight bilateral silicon-probe multi-cellular electrophysiological recordings performed on four male Long-Evans rats. These recordings were performed to assess the effect of novel spatial learning on hippocampal CA1 neural firing and LFP patterns in na&iuml;ve animals. Each session consisted of a long (~4 hour) PRE rest/sleep epoch home-cage recordings performed in a familiar room, followed by a Novel MAZE running epoch (~45 minutes) in which the animals were transferred to a novel room, and water-rewarded to run on a novel maze. These mazes were either A) a wooden 1.6m linear platform, B) a wooden 1m diameter circular platform or C) a 2m metal linear platform. Animals were rewarded either at both ends of the linear platform, or at a predetermined location on the circular platform. The animal was gently encouraged to run unidirectionally on the circular platform. After the MAZE epochs the animals were transferred back to their home-cage in the familiar room where a long (~4 hour) POST rest/sleep was recorded. All eight sessions were concatenated from the PRE, MAZE, and POST recording epochs. In addition to hippocampal electrophysiological recordings, neck EMG and head-mounted accelerometer signals were recorded, and the animal&rsquo;s position during MAZE running epochs was tracked via head-mounted LEDs. Some publications based on all or parts of these data are: <a href=\"http://www.ncbi.nlm.nih.gov/pubmed/27013730\">Grosmark, A.D., and Buzs&aacute;ki, G. (2016). Diversity in neural firing dynamics supports both rigid and learned hippocampal sequences. Science 351, 1440&ndash;1443.</a> <a href=\"http://www.ncbi.nlm.nih.gov/pubmed/27573200\">Chen, Z., Grosmark, A.D., Penagos, H., and Wilson, M.A. (2016). Uncovering representations of sleep-associated hippocampal ensemble spike activity. Sci. Rep. 6, 32193.</a></p>",
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            "name": "CRCNS Hippocampus: hc-5",
            "description": "<p>Simultaneous extracellular recordings from left and right hippocampal areas CA1 and right entorhinal cortex from a rat performing a left / right alternation task and other behaviors. [<a href=\"http://crcns.org/data-sets/hc/hc-5/about-hc-5\">about</a>] The data set contains recordings made using a silicon probe from three areas from a single rat that was performing different behavioral tasks. &nbsp;The three regions recorded from are left and right hippocampal CA1 and right entorhinal cortex. &nbsp;The tasks are a left/right alternate selection task, wheel running, and platform exploration. &nbsp; The neural data was recorded on 125 channels. Included in the data set are the following items:</p>\r\n\r\n<ul>\r\n\t<li>Waveforms of putative spikes extracted from original raw broadband data</li>\r\n\t<li>LFPs (local field potentials)</li>\r\n\t<li>Results of spike sorting</li>\r\n\t<li>Information about the animal behavior during the experiment</li>\r\n</ul>\r\n\r\n<p>Several publication based on some of the data: <a class=\"external-link\" href=\"http://www.ncbi.nlm.nih.gov/pubmed/18772431\">Internally generated cell assembly sequences in the rat hippocampus. Pastalkova E, Itskov V, Amarasingham A, Buzs&aacute;ki G. Science. 2008 Sep 5;321(5894):1322-7</a> <a class=\"external-link\" href=\"http://www.ncbi.nlm.nih.gov/pubmed/19874793\">Theta oscillations provide temporal windows for local circuit computation in the entorhinal-hippocampal loop. Mizuseki K, Sirota A, Pastalkova E, Buzs&aacute;ki G., Neuron. 2009 Oct 29;64(2):267-80.</a> <a class=\"external-link\" href=\"http://www.ncbi.nlm.nih.gov/pubmed/25531571\">Theta sequences are essential for internally generated hippocampal firing fields. Wang Y, Romani S, Lustig B, Leonardo A, Pastalkova E. Nat Neurosci. 2014 Dec 22.</a></p>",
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        {
            "id": "c7350bfa-b63e-403b-b349-ae6e6c067e13",
            "name": "CRCNS Hippocampus: hc-4",
            "description": "<p>Extracellular recordings from muiti-site silicon probes used for clustering of neuron responses in rat hippocampal and entorhinal regions. Contains additional data (including raw data) used for spike sorting of some neuron responses provided in the hc-3 data set. [<a href=\"http://crcns.org/data-sets/hc/hc-4/about-hc-4\">about</a>] The data set contains raw data that is associated with sessions in the hc-3 data set, but not included in that data set. The relationship between the hc-3 and hc-4 (this) data sets are as follows: &nbsp;In the hc-3 data set, for each electrode placement, the data set typically contains only a subset of the sessions recorded (usually sleep sessions are not included), and also no original broadband data is included. &nbsp; The corresponding data in the hc-4 data set includes all the sessions and the broadband raw data used to detect putative spikes, as well as all of the derived data used to do the spike sorting.&nbsp;Because the broadband data is very large, so far, data corresponding to only one electrode placement are included.</p>",
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        {
            "id": "92246f51-3683-46a1-9e82-61e48ec990f5",
            "name": "CRCNS Hippocampus: hc-3",
            "description": "<p>Multiple single unit recordings from different rat hippocampal and entorhinal regions while the animals were performing multiple behavioral tasks. [<a href=\"http://crcns.org/data-sets/hc/hc-3/about-hc-3\">about</a>] The data set contains recordings made from multiple hippocampal areas in Long-Evans rats, including: Cornu Ammonis: CA1 and CA3; dentate gyrus (DG), and entorhinal cortex: EC2, EC3, EC4, EC5.&nbsp; The data was obtained during 442 recording sessions and includes responses of 7,737 neurons in eleven animals while they performed one of fourteen behaviors.&nbsp; Total time for all experiments is 204.5 hours. &nbsp; The raw (broadband) data was recorded at 20KHz, simultaneously from 31 to 127 channels.&nbsp; The raw data was processed to extract the LFPs (Local Field Potentials) and detect spikes. Included in the data set are the following items:</p>\r\n\r\n<ul>\r\n\t<li>Times and waveforms of detected potential spikes.</li>\r\n\t<li>Results of spike sorting.</li>\r\n\t<li>LFPs.</li>\r\n\t<li>For many sessions, the coordinate and direction of the rats head and video files from which the positions were extracted.</li>\r\n\t<li>Metadata tables giving properties of the neurons and characteristics of the recording sessions.</li>\r\n</ul>\r\n\r\n<p>A fuller description of the data set is in&nbsp;<a class=\"internal-link\" href=\"http://crcns.org/files/data/hc3/crcns-hc3-data-description.pdf\" title=\"crcns-hc3-data-description.pdf\">crcns-hc3-data-description.pdf</a> Several publication based on some of the data are: <a class=\"external-link\" href=\"http://www.ncbi.nlm.nih.gov/pubmed/19874793\">Theta oscillations provide temporal windows for local circuit computation in the entorhinal-hippocampal loop. Mizuseki K, Sirota A, Pastalkova E, Buzs&aacute;ki G., Neuron. 2009 Oct 29;64(2):267-80.</a> <a class=\"external-link\" href=\"http://www.ncbi.nlm.nih.gov/pubmed/19074018\">Hippocampal network dynamics constrain the time lag between pyramidal cells across modified environments. Diba K, Buzs&aacute;ki G., J Neurosci. 2008 Dec 10;28(50):13448-56.</a> The following publication describes this data set: <a class=\"external-link\" href=\"https://f1000research.com/articles/3-98/v2\">Neurosharing: large-scale data sets (spike, LFP) recorded from the hippocampal-entorhinal system in behaving rats [version 2] Kenji Mizuseki, Kamran Diba, Eva Pastalkova, Jeff Teeters, Anton Sirota, Gy&ouml;rgy Buzs&aacute;ki. F1000Research 2014, 3:98. doi: 10.12688/f1000research.3895.2</a></p>",
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        {
            "id": "116dac0d-a012-41f4-b452-0d5aa24794de",
            "name": "CRCNS Hippocampus: hc-2",
            "description": "<p>Multi-unit recordings from the rat hippocampus made during open field foraging.&nbsp;[<a href=\"http://crcns.org/data-sets/hc/hc-2/about-hc-2\">about</a>] The data set contains multichannel simultaneous recordings made from layer CA1 of the right dorsal hippocampus of three Long-Evans rats during open field tasks in which the animals chased randomly placed drops of water or pieces of Froot Loops while on a elevated square platform.&nbsp;&nbsp; Data for 21 experiments are included.&nbsp; The duration of the experiments ranged from about 17 minutes to 1 hour 46 minutes.&nbsp; Total time for all experiments is about 19 hours.&nbsp; The raw (broadband) data was recorded at 20KHz, simultaneously from 31 to 64 channels.&nbsp; The raw data was processed to extract the LFPs (Local Field Potentials) and detect spikes. Included in the data set are the following items:</p>\r\n\r\n<ul>\r\n\t<li>Raw (broadband data).</li>\r\n\t<li>Files generated by processing the raw data to extract LFPs and detect spikes.</li>\r\n\t<li>The coordinate and direction of the rats head during the experiment, given both as video files showing the position of the head, and numeric values that were extracted from the videos.</li>\r\n\t<li>Matlab scripts and links to the open source software that was used to process the data.</li>\r\n</ul>\r\n\r\n<p>More information about the experiments and data processing are given in the documents listed at the bottom of this page. A publication based on the data is: <a class=\"external-link\" href=\"http://www.ncbi.nlm.nih.gov/pubmed/19874793\">Mizuseki K, Sirota A, Pastalkova E, Buzs&aacute;ki G., Neuron. 2009 Oct 29;64(2):267-80.</a>&nbsp;(<a class=\"external-link\" href=\"http://www.ncbi.nlm.nih.gov/pubmed/19874793\">http://www.ncbi.nlm.nih.gov/pubmed/19874793</a>).</p>",
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                    "can_change": false,
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        },
        {
            "id": "73e724fe-fba7-44eb-8785-96176c36e386",
            "name": "CRCNS Hippocampus: hc-1",
            "description": "<p>Simultaneous intracellular and extracellular recordings from hippocampus region CA1 of anesthetized rats. [<a href=\"http://crcns.org/data-sets/hc/hc-1/about\">about</a>] The data consists of simultaneous intracellular and extracellular recordings in the hippocampus of anesthetized rats. Experimental procedures as well as major results are described in: <a href=\"http://www.ncbi.nlm.nih.gov/pubmed/10899213\">Henze et al, J. Neurophysiology 84, 390-400 (2000)</a> <a href=\"http://www.ncbi.nlm.nih.gov/pubmed/10899214\">Harris et al, J. Neurophysiology 84, 401-414 (2000)</a> These data are useful as a benchmark for spike detection and sorting (see paper by Harris et al., for some of the methodology).</p>",
            "sessions": [],
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            "is_public": true,
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        {
            "id": "bc3e696f-5925-49c1-92e4-5471668a493c",
            "name": "Theta rhythm perturbation by focal cooling of the septal pacemaker in awake rats",
            "description": "<div>Hippocampal theta oscillations coordinate neuronal firing to support memory and spatial navigation. The medial septum (MS) is critical in theta generation by two possible mechanisms: either a unitary &ldquo;pacemaker&rdquo; timing signal is imposed on the hippocampal system, or it may assist in organizing target subcircuits within the phase space of theta oscillations. We used temperature manipulation of the MS to test these models. Cooling of the MS reduced both theta frequency and power and was associated with an enhanced incidence of errors in a spatial navigation task, but it did not affect spatial correlates of neurons. MS cooling decreased theta frequency oscillations of place cells and reduced distance-time compression but preserved distance-phase compression of place field sequences within the theta cycle. Thus, the septum is critical for sustaining precise theta phase coordination of cell assemblies in the hippocampal system, a mechanism needed for spatial memory. <strong>Highlights</strong></div>\r\n\r\n<ul>\r\n\t<li>Cooling the medial septum slowed down theta oscillations in the hippocampus</li>\r\n\t<li>The spatial representation in the hippocampus remained intact</li>\r\n\t<li>Choice errors increased in a spatial task</li>\r\n\t<li>Distance-time, but not distance-theta phase, compression was altered</li>\r\n</ul>\r\n\r\n<p><strong>Cooling of Medial Septum Reveals Theta Phase Lag Coordination of Hippocampal Cell Assemblies</strong>&nbsp;Peter Christian Petersen, Gy&ouml;rgy Buzs&aacute;ki. Neuron, June 2020. [<a href=\"https://buzsakilab.com/wp/wp-content/uploads/formidable/211/Petersen_Buzsaki_Neuron_2020.pdf\" rel=\"noopener noreferrer\" target=\"_blank\">PDF</a>] [<a href=\"https://www.cell.com/neuron/fulltext/S0896-6273(20)30392-5\" rel=\"noopener noreferrer\" target=\"_blank\">Link</a>]</p>\r\n\r\n<h3><strong>Description of the data content</strong></h3>\r\n\r\n<div><strong>Dataset details</strong></div>\r\n\r\n<div>Thermometer implanted in Medial Septum together with a thermal perturbation probe in freely&nbsp;awake Long Evans rats. 2000 single cells spike sorted, up to 150 bilateral simultaneous cells recorded from CA1, all sessions with behavior. All spike sorted sessions processed with CellExplorer.</div>\r\n\r\n<h3><strong>Behaviors</strong></h3>\r\n\r\n<div>- Circular track: up to 180 alternation trials, always with 40 control trials</div>\r\n\r\n<div>- Linear track</div>\r\n\r\n<div>- Wheel running</div>\r\n\r\n<div>&nbsp;</div>\r\n\r\n<div>Most sessions were recorded with Optitrack, a 3D tracking system (120Hz), and a ceiling-mounted&nbsp;video camera recorded at 10Hz. The animal&#39;s positional data was determined with Optitrack.</div>\r\n\r\n<div>&nbsp;</div>\r\n\r\n<h3><strong>Data access</strong></h3>\r\n\r\n<div>Webshare:&nbsp;<a href=\"https://buzsakilab.nyumc.org/datasets/PetersenP/\" rel=\"noopener\" target=\"_blank\">https://buzsakilab.nyumc.org/datasets/PetersenP/</a></div>\r\n\r\n<div>Globus:&nbsp;<a href=\"https://app.globus.org/file-manager?origin_id=558c54fe-cc41-11e8-8c6a-0a1d4c5c824a&amp;origin_path=%2FPetersenP%2F\" rel=\"noopener\" target=\"_blank\">https://app.globus.org/file-manager?origin_id=558c54fe-cc41-11e8-8c6a-0a1d4c5c824a&amp;origin_path=%2FPetersenP%2F</a></div>\r\n\r\n<div>Globus will give the most reliable data transfer and should be very fast as well. Data is organized by subjectName / sessionName. Using Globus you are also able to download all data or a subset of sessions in one go.</div>\r\n\r\n<div>&nbsp;</div>\r\n\r\n<div>There is also <a href=\"https://docs.google.com/spreadsheets/d/1NKgKLU2moxgwPT8vDqUizfpeKQgKW1e5FMyyK_PbWuY/edit?usp=sharing\" rel=\"noopener\" target=\"_blank\">a google spreadsheet for this dataset (Medial Septal cooling project)</a>. The sessions that we are sharing now are labeled as public in the spreadsheet.</div>\r\n\r\n<h3><strong>Data format</strong></h3>\r\n\r\n<div>The data follow the Buzsaki lab&#39;s format and standard of CellExplorer. All files below are described on the <a href=\"https://cellexplorer.org/datastructure/data-structure-and-format/\" rel=\"noopener\" target=\"_blank\">CellExplorer&#39;s website</a>. The various included files are:</div>\r\n\r\n<div>\r\n<ul>\r\n\t<li>basename.dat: binary raw file, typically sampled at 20KHz. (Neurosuite standard)</li>\r\n\t<li>basename.lfp: A low-pass filtered and downsampled lfp file (1250Hz)</li>\r\n\t<li>basename.xml: parameter file used by Neuroscope. to visualize the files above</li>\r\n\t<li>basename.session.mat : session metadata as described on the&nbsp;<a href=\"https://cellexplorer.org/datastructure/data-structure-and-format/#session-metadata\" rel=\"noopener\" target=\"_blank\">CellExplorers website</a></li>\r\n\t<li>basename.animal.behavior.mat : behavioral data</li>\r\n\t<li>basename.trials.behavior.mat : trial-wise data</li>\r\n\t<li>basename.spikes.cellinfo.mat : spike data</li>\r\n\t<li>basename.mono_res.cellinfo.mat : monosynaptic connections</li>\r\n\t<li>basename.cell_metrics.cellinfo.mat.: cell metrics, including putative Cell types</li>\r\n\t<li>basename.temperature.timeseries.mat : time series containing the temperature recording from the Medial Septal region</li>\r\n\t<li>basename.cooling.manipulation.mat : info about time windows of the cooling manipulation</li>\r\n\t<li>basename.ripples.events.mat : Detection of ripples.</li>\r\n\t<li>basename.deepSuperficialfromRipple.channelinfo.mat : deep superficial determination using the average ripple/sharp-wave: <a href=\"https://cellexplorer.org/tutorials/deep-superficial-tutorial/\" rel=\"noopener\" target=\"_blank\">https://cellexplorer.org/tutorials/deep-superficial-tutorial/</a></li>\r\n\t<li>Some session also contains scoring of brain state:&nbsp;basename.eegstates.mat</li>\r\n</ul>\r\n</div>\r\n\r\n<div>There are many other derived files in the data folder. Most sessions were recorded with Optitrack, a 3D tracking system (120Hz), and a ceiling-mounted video camera recorded at 10Hz. The animal&#39;s positional data was determined with Optitrack. Most sessions are on the alternation track, but there are also linear track sessions (about 2 meters long) and wheel running sessions (A square box with a running wheel attached). The probe implant information is available <a href=\"https://buzsakilab.com/wp/animals/?frm_search=&amp;project=Theta%20rhythm%20perturbation%20by%20focal%20cooling%20of%20the%20septal%20pacemaker%20in%20awake%20rats&amp;investigator=&amp;sex=&amp;species=&amp;strain=&amp;geneticline=\" rel=\"noopener\" target=\"_blank\">here</a> and with above tabs.</div>\r\n\r\n<h3><strong>Matlab Code</strong></h3>\r\n\r\n<div>The custom code is available from GitHub: <a href=\"https://github.com/petersenpeter/Code_Petersen_Buzsaki_Neuron_2020\">https://github.com/petersenpeter/Code_Petersen_Buzsaki_Neuron_2020</a></div>\r\n\r\n<div>&nbsp;</div>\r\n\r\n<div>&nbsp;</div>",
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