A stable hippocampal code in freely flying bats.


Journal

Nature
ISSN: 1476-4687
Titre abrégé: Nature
Pays: England
ID NLM: 0410462

Informations de publication

Date de publication:
04 2022
Historique:
received: 16 06 2021
accepted: 17 02 2022
pubmed: 1 4 2022
medline: 19 4 2022
entrez: 31 3 2022
Statut: ppublish

Résumé

Neural activity in the hippocampus is known to reflect how animals move through an environment

Identifiants

pubmed: 35355012
doi: 10.1038/s41586-022-04560-0
pii: 10.1038/s41586-022-04560-0
pmc: PMC10212506
mid: NIHMS1893117
doi:

Substances chimiques

Calcium SY7Q814VUP

Types de publication

Journal Article

Langues

eng

Sous-ensembles de citation

IM

Pagination

98-103

Subventions

Organisme : NINDS NIH HHS
ID : RF1 NS118422
Pays : United States

Commentaires et corrections

Type : ErratumIn

Informations de copyright

© 2022. The Author(s), under exclusive licence to Springer Nature Limited.

Références

O’Keefe, J. & Dostrovsky, J. The hippocampus as a spatial map. Preliminary evidence from unit activity in the freely-moving rat. Brain Res. 34, 171–175 (1971).
pubmed: 5124915 doi: 10.1016/0006-8993(71)90358-1
Moser, E. I., Moser, M.-B. & McNaughton, B. L. Spatial representation in the hippocampal formation: a history. Nat. Neurosci. 20, 1448–1464 (2017).
pubmed: 29073644 doi: 10.1038/nn.4653
Geva-Sagiv, M., Las, L., Yovel, Y. & Ulanovsky, N. Spatial cognition in bats and rats: from sensory acquisition to multiscale maps and navigation. Nat. Rev. Neurosci. 16, 94–108 (2015).
pubmed: 25601780 doi: 10.1038/nrn3888
Etienne, A. S. et al. Navigation through vector addition. Nature 396, 161–164 (1998).
pubmed: 9823894 doi: 10.1038/24151
Harten, L., Katz, A., Goldshtein, A., Handel, M. & Yovel, Y. The ontogeny of a mammalian cognitive map in the real world. Science 369, 194–197 (2020).
pubmed: 32647001 doi: 10.1126/science.aay3354
Toledo, S. et al. Cognitive map-based navigation in wild bats revealed by a new high-throughput tracking system. Science 369, 188–193 (2020).
pubmed: 32647000 doi: 10.1126/science.aax6904
Ziv, Y. et al. Long-term dynamics of CA1 hippocampal place codes. Nat. Neurosci. 16, 264–266 (2013).
pubmed: 23396101 pmcid: 3784308 doi: 10.1038/nn.3329
Rubin, A., Geva, N., Sheintuch, L. & Ziv, Y. Hippocampal ensemble dynamics timestamp events in long-term memory. eLife 4, e12247 (2015).
pubmed: 26682652 pmcid: 4749549 doi: 10.7554/eLife.12247
Gonzalez, W. G., Zhang, H., Harutyunyan, A. & Lois, C. Persistence of neuronal representations through time and damage in the hippocampus. Science 365, 821–825 (2019).
pubmed: 31439798 doi: 10.1126/science.aav9199
Mankin, E. A., Diehl, G. W., Sparks, F. T., Leutgeb, S. & Leutgeb, J. K. Hippocampal CA2 activity patterns change over time to a larger extent than between spatial contexts. Neuron 85, 190–201 (2015).
pubmed: 25569350 pmcid: 4392894 doi: 10.1016/j.neuron.2014.12.001
Thompson, L. T. & Best, P. J. Long-term stability of the place-field activity of single units recorded from the dorsal hippocampus of freely behaving rats. Brain Res. 509, 299–308 (1990).
pubmed: 2322825 doi: 10.1016/0006-8993(90)90555-P
Hainmueller, T. & Bartos, M. Parallel emergence of stable and dynamic memory engrams in the hippocampus. Nature 558, 292–296 (2018).
pubmed: 29875406 pmcid: 7115829 doi: 10.1038/s41586-018-0191-2
Moser, E. I., Kropff, E. & Moser, M.-B. Place cells, grid cells, and the brain’s spatial representation system. Annu. Rev. Neurosci. 31, 69–89 (2008).
pubmed: 18284371 doi: 10.1146/annurev.neuro.31.061307.090723
Payne, H. L., Lynch, G. F. & Aronov, D. Neural representations of space in the hippocampus of a food-caching bird. Science 373, 343–348 (2021).
pubmed: 34437154 pmcid: 8503942 doi: 10.1126/science.abg2009
O’Keefe, J. & Nadel, L. The Hippocampus as a Cognitive Map (Clarendon Press, Oxford Univ. Press, 1978).
Yartsev, M. M. & Ulanovsky, N. Representation of three-dimensional space in the hippocampus of flying bats. Science 340, 367–372 (2013).
pubmed: 23599496 doi: 10.1126/science.1235338
Wohlgemuth, M. J., Yu, C. & Moss, C. F. 3D hippocampal place field dynamics in free-flying echolocating bats. Front. Cell. Neurosci. 12, 270 (2018).
pubmed: 30190673 pmcid: 6115611 doi: 10.3389/fncel.2018.00270
Tolman, E. C. Cognitive maps in rats and men. Psychol. Rev. 55, 189–208 (1948).
pubmed: 18870876 doi: 10.1037/h0061626
Tsoar, A. et al. Large-scale navigational map in a mammal. Proc. Natl Acad. Sci. USA 108, E718–E724 (2011).
pubmed: 21844350 pmcid: 3174628 doi: 10.1073/pnas.1107365108
Muller, R., Kubie, J. & Ranck, J. Spatial firing patterns of hippocampal complex-spike cells in a fixed environment. J. Neurosci. 7, 1935–1950 (1987).
pubmed: 3612225 pmcid: 6568929 doi: 10.1523/JNEUROSCI.07-07-01935.1987
Lütcke, H., Margolis, D. J. & Helmchen, F. Steady or changing? Long-term monitoring of neuronal population activity. Trends Neurosci. 36, 375–384 (2013).
pubmed: 23608298 doi: 10.1016/j.tins.2013.03.008
Clopath, C., Bonhoeffer, T., Hübener, M. & Rose, T. Variance and invariance of neuronal long-term representations. Philos. Trans. R. Soc. B 372, 20160161 (2017).
doi: 10.1098/rstb.2016.0161
Levy, S. J., Kinsky, N. R., Mau, W., Sullivan, D. W. & Hasselmo, M. E. Hippocampal spatial memory representations in mice are heterogeneously stable. Hippocampus 31, 244–260 (2021).
pubmed: 33098619 doi: 10.1002/hipo.23272
Kinsky, N. R. et al. Trajectory-modulated hippocampal neurons persist throughout memory-guided navigation. Nat. Commun. 11, 2443 (2020).
pubmed: 32415083 pmcid: 7229120 doi: 10.1038/s41467-020-16226-4
Liberti, W. A., Perkins, L. N., Leman, D. P. & Gardner, T. J. An open source, wireless capable miniature microscope system. J. Neural Eng. 14, 045001 (2017).
pubmed: 28514229 pmcid: 5955387 doi: 10.1088/1741-2552/aa6806
Genzel, D. & Yartsev, M. M. The fully automated bat (FAB) flight room: a human-free environment for studying navigation in flying bats and its initial application to the retrosplenial cortex. J. Neurosci. Methods 348, 108970 (2021).
pubmed: 33065152 doi: 10.1016/j.jneumeth.2020.108970
Dotson, N. M. & Yartsev, M. M. Nonlocal spatiotemporal representation in the hippocampus of freely flying bats. Science 373, 242–247 (2021).
pubmed: 34244418 pmcid: 8820191 doi: 10.1126/science.abg1278
Sarel, A., Finkelstein, A., Las, L. & Ulanovsky, N. Vectorial representation of spatial goals in the hippocampus of bats. Science 355, 176–180 (2017).
pubmed: 28082589 doi: 10.1126/science.aak9589
Mallory, C. S. & Giocomo, L. M. Heterogeneity in hippocampal place coding. Curr. Opin. Neurobiol. 49, 158–167 (2018).
pubmed: 29522977 pmcid: 5930875 doi: 10.1016/j.conb.2018.02.014
McNaughton, B. L., Barnes, C. A. & O’Keefe, J. The contributions of position, direction, and velocity to single unit activity in the hippocampus of freely-moving rats. Exp. Brain Res. 52, 41–49 (1983).
pubmed: 6628596 doi: 10.1007/BF00237147
Wood, E. R., Dudchenko, P. A., Robitsek, R. J. & Eichenbaum, H. Hippocampal neurons encode information about different types of memory episodes occurring in the same location. Neuron 27, 623–633 (2000).
pubmed: 11055443 doi: 10.1016/S0896-6273(00)00071-4
Rubin, A., Yartsev, M. M. & Ulanovsky, N. Encoding of head direction by hippocampal place cells in bats. J. Neurosci. 34, 1067–1080 (2014).
pubmed: 24431464 pmcid: 6608343 doi: 10.1523/JNEUROSCI.5393-12.2014
Geva-Sagiv, M., Romani, S., Las, L. & Ulanovsky, N. Hippocampal global remapping for different sensory modalities in flying bats. Nat. Neurosci. 19, 952–958 (2016).
pubmed: 27239936 doi: 10.1038/nn.4310
Kentros, C. G., Agnihotri, N. T., Streater, S., Hawkins, R. D. & Kandel, E. R. Increased attention to spatial context increases both place field stability and spatial memory. Neuron 42, 283–295 (2004).
pubmed: 15091343 doi: 10.1016/S0896-6273(04)00192-8
Muzzio, I. A. et al. Attention enhances the retrieval and stability of visuospatial and olfactory representations in the dorsal hippocampus. PLoS Biol. 7, e1000140 (2009).
pubmed: 19564903 pmcid: 2696347 doi: 10.1371/journal.pbio.1000140
Dupret, D., O’Neill, J., Pleydell-Bouverie, B. & Csicsvari, J. The reorganization and reactivation of hippocampal maps predict spatial memory performance. Nat. Neurosci. 13, 995–1002 (2010).
pubmed: 20639874 pmcid: 2923061 doi: 10.1038/nn.2599
Tchernichovski, O., Benjamini, Y. & Golani, I. The dynamics of long-term exploration in the rat. Part I. A phase-plane analysis of the relationship between location and velocity. Biol. Cybern. 78, 423–432 (1998).
pubmed: 9711816 doi: 10.1007/s004220050446
Yartsev, M. M. The emperor’s new wardrobe: rebalancing diversity of animal models in neuroscience research. Science 358, 466–469 (2017).
pubmed: 29074765 doi: 10.1126/science.aan8865
Krakauer, J. W., Ghazanfar, A. A., Gomez-Marin, A., MacIver, M. A. & Poeppel, D. Neuroscience needs behavior: correcting a reductionist bias. Neuron 93, 480–490 (2017).
pubmed: 28182904 doi: 10.1016/j.neuron.2016.12.041
Yovel, Y., Geva-Sagiv, M. & Ulanovsky, N. Click-based echolocation in bats: not so primitive after all. J. Comp. Physiol. A 197, 515–530 (2011).
doi: 10.1007/s00359-011-0639-4
Holland, R. A., Waters, D. A. & Rayner, J. M. V. Echolocation signal structure in the Megachiropteran bat Rousettus aegyptiacus Geoffroy 1810. J. Exp. Biol. 207, 4361–4369 (2004).
pubmed: 15557022 doi: 10.1242/jeb.01288
Lee, W.-J. et al. Tongue-driven sonar beam steering by a lingual-echolocating fruit bat. PLoS Biol. 15, e2003148 (2017).
pubmed: 29244805 pmcid: 5774845 doi: 10.1371/journal.pbio.2003148
Danilovich, S. & Yovel, Y. Integrating vision and echolocation for navigation and perception in bats. Sci. Adv. 5, eaaw6503 (2019).
pubmed: 31249874 pmcid: 6594759 doi: 10.1126/sciadv.aaw6503
El-Mansi, A. A., Al-Kahtani, M. A., Al-Sayyad, K. M., Ahmed, E. A. & Gad, A. R. Visual adaptability and retinal characterization of the Egyptian fruit bat (Rousettus aegyptiacus, Pteropodidae): new insights into photoreceptors spatial distribution and melanosomal activity. Micron 137, 102897 (2020).
pubmed: 32563026 doi: 10.1016/j.micron.2020.102897
Ghosh, K. K. et al. Miniaturized integration of a fluorescence microscope. Nat. Methods 8, 871–878 (2011).
pubmed: 21909102 pmcid: 3810311 doi: 10.1038/nmeth.1694
Groot, A. D., Genderen, R. M. V., Coppens, J., Zeeuw, I. D. & Hoogland, T. M. NINscope: a versatile miniscope for multi-region circuit investigations. eLife 9, e49987 (2019).
doi: 10.7554/eLife.49987
Shuman, T. et al. Breakdown of spatial coding and interneuron synchronization in epileptic mice. Nat. Neurosci. 23, 229–238 (2020).
pubmed: 31907437 pmcid: 7259114 doi: 10.1038/s41593-019-0559-0
Cai, D. J. et al. A shared neural ensemble links distinct contextual memories encoded close in time. Nature 534, 115–118 (2016).
pubmed: 27251287 pmcid: 5063500 doi: 10.1038/nature17955
Kügler, S., Kilic, E. & Bähr, M. Human synapsin 1 gene promoter confers highly neuron-specific long-term transgene expression from an adenoviral vector in the adult rat brain depending on the transduced area. Gene Ther. 10, 337–347 (2003).
pubmed: 12595892 doi: 10.1038/sj.gt.3301905
Barchi, J. R., Knowles, J. M. & Simmons, J. A. Spatial memory and stereotypy of flight paths by big brown bats in cluttered surroundings. J. Exp. Biol. 216, 1053–1063 (2013).
pubmed: 23447667 doi: 10.1242/jeb.073197
Guizar-Sicairos, M., Thurman, S. T. & Fienup, J. R. Efficient subpixel image registration algorithms. Opt. Lett. 33, 156–158 (2008).
pubmed: 18197224 doi: 10.1364/OL.33.000156
Huang, L. et al. Relationship between simultaneously recorded spiking activity and fluorescence signal in GCaMP6 transgenic mice. eLife 10, e51675 (2021).
pubmed: 33683198 pmcid: 8060029 doi: 10.7554/eLife.51675
Sheintuch, L. et al. Tracking the same neurons across multiple days in Ca2
pubmed: 29069591 pmcid: 5670033 doi: 10.1016/j.celrep.2017.10.013
Zhou, P. et al. Efficient and accurate extraction of in vivo calcium signals from microendoscopic video data. eLife 7, e28728 (2018).
pubmed: 29469809 pmcid: 5871355 doi: 10.7554/eLife.28728
Pnevmatikakis, E. A. et al. Simultaneous denoising, deconvolution, and demixing of calcium imaging data. Neuron 89, 285–299 (2015).
doi: 10.1016/j.neuron.2015.11.037
Skaggs, W. E., McNaughton, B. L., Wilson, M. A. & Gothard, K. M. An information-theoretic approach to deciphering the hippocampal code. In Adv. Neural Inf. Process. Syst. 5 (eds Hanson, S. J., Cowan, J. D. & Giles, C. L.) 1030–1037 (Morgan Kaufman, San Mateo, 1993).
Zhang, K., Ginzburg, I., McNaughton, B. L. & Sejnowski, T. J. Interpreting neuronal population activity by reconstruction: unified framework with application to hippocampal place cells. J. Neurophysiol. 79, 1017–1044 (1998).
pubmed: 9463459 doi: 10.1152/jn.1998.79.2.1017
Carpenter, J., Blackstad, J., Dunn, B., Moser, E. I. & Moser, M.-B. Egocentric tuning in hippocampal neurons: using simulations to estimate misclassification rates. In Proc. Soc. Neurosci. P871.08 (2021).

Auteurs

William A Liberti (WA)

Department of Bioengineering, UC Berkeley, Berkeley, CA, USA.

Tobias A Schmid (TA)

Helen Wills Neuroscience Institute, UC Berkeley, Berkeley, CA, USA.

Angelo Forli (A)

Department of Bioengineering, UC Berkeley, Berkeley, CA, USA.

Madeleine Snyder (M)

Department of Bioengineering, UC Berkeley, Berkeley, CA, USA.

Michael M Yartsev (MM)

Department of Bioengineering, UC Berkeley, Berkeley, CA, USA. myartsev@berkeley.edu.
Helen Wills Neuroscience Institute, UC Berkeley, Berkeley, CA, USA. myartsev@berkeley.edu.

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