Neuronal Oscillations in Cortical Networks

Displaying 1 - 23 of 23CSV
Buss, E. W., Lofaro, O. M., Barnett, A., Leroy, F., Santoro, B., Siegelbaum, S. A., & Bock, T. (2024). HCN1 hyperpolarization-activated cyclic nucleotide–gated channels enhance evoked GABA release from parvalbumin-positive interneurons. Proceedings of the National Academy of Sciences, 121(42). https://doi.org/10.1073/pnas.2319246121
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Liu, Y.-H., Lin, Y.-C., Shih, L.-C., Lin, C.-P., & Chang, L.-H. (2024). Dissociation of focal and large-scale inhibitory functions in the older adults: A multimodal MRI study. Archives of Gerontology and Geriatrics, 127, 105583. https://doi.org/10.1016/j.archger.2024.105583
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Rosch, R. E., Burrows, D. R. W., Lynn, C. W., & Ashourvan, A. (2024). Spontaneous Brain Activity Emerges from Pairwise Interactions in the Larval Zebrafish Brain. Physical Review X, 14(3). https://doi.org/10.1103/physrevx.14.031050
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Kim, Y., Ravid, O., Zheng, X., Kim, Y., Neria, Y., Lee, S., He, X., & Zhu, X. (2024). Explaining deep learning-based representations of resting state functional connectivity data: focusing on interpreting nonlinear patterns in autism spectrum disorder. Frontiers in Psychiatry, 15. https://doi.org/10.3389/fpsyt.2024.1397093
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Chohan, M. O., Lewandowski, A. B., Siegel, R. N., O’Reilly, K. C., & Veenstra-VanderWeele, J. (2024). Adolescent chemogenetic activation of dopaminergic neurons leads to reversible decreases in amphetamine-induced stereotypic behavior. Molecular Brain, 17(1). https://doi.org/10.1186/s13041-024-01110-9
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Sahyoun, G. M., Do, T. D., Anqueira-Gonzàlez, A., Hornblass, A., & Canetta, S. E. (2024). Peripuberty Is a Sensitive Period for Prefrontal Parvalbumin Interneuron Activity to Impact Adult Cognitive Flexibility. Developmental Neuroscience, 1–12. Portico. https://doi.org/10.1159/000539584
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Christenson, M. P., Sanz Diez, A., Heath, S. L., Saavedra-Weisenhaus, M., Adachi, A., Nern, A., Abbott, L. F., & Behnia, R. (2024). Hue selectivity from recurrent circuitry in Drosophila. Nature Neuroscience, 27(6), 1137–1147. https://doi.org/10.1038/s41593-024-01640-4
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Kay, K., Biderman, N., Khajeh, R., Beiran, M., Cueva, C. J., Shohamy, D., Jensen, G., Wei, X.-X., Ferrera, V. P., & Abbott, L. (2024). Emergent neural dynamics and geometry for generalization in a transitive inference task. PLOS Computational Biology, 20(4), e1011954. https://doi.org/10.1371/journal.pcbi.1011954
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Simpson, E. H., Akam, T., Patriarchi, T., Blanco-Pozo, M., Burgeno, L. M., Mohebi, A., Cragg, S. J., & Walton, M. E. (2024). Lights, fiber, action! A primer on in vivo fiber photometry. Neuron, 112(5), 718–739. https://doi.org/10.1016/j.neuron.2023.11.016
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Dura-Bernal, S., Griffith, E. Y., Barczak, A., O’Connell, M. N., McGinnis, T., Moreira, J. V. S., Schroeder, C. E., Lytton, W. W., Lakatos, P., & Neymotin, S. A. (2023). Data-driven multiscale model of macaque auditory thalamocortical circuits reproduces in vivo dynamics. Cell Reports, 42(11), 113378. https://doi.org/10.1016/j.celrep.2023.113378
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Kim, H., Zhu, X., Zhao, Y., Bell, S. A., Cohen, D. E., Lee, S., & Goldberg, T. E. (2023). Resting‐State Connectivity Changes in Older Adults with Sleep Disturbance. Alzheimer’s & Dementia, 19(S8). Portico. https://doi.org/10.1002/alz.062749
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Shahsavarani, S., Thibodeaux, D. N., Xu, W., Kim, S. H., Lodgher, F., Nwokeabia, C., Cambareri, M., Yagielski, A. J., Zhao, H. T., Handwerker, D. A., Gonzalez-Castillo, J., Bandettini, P. A., & Hillman, E. M. C. (2023). Cortex-wide neural dynamics predict behavioral states and provide a neural basis for resting-state dynamic functional connectivity. Cell Reports, 42(6), 112527. https://doi.org/10.1016/j.celrep.2023.112527
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McSweeney, M., Morales, S., Valadez, E. A., Buzzell, G. A., Yoder, L., Fifer, W. P., Pini, N., Shuffrey, L. C., Elliott, A. J., Isler, J. R., & Fox, N. A. (2023). Age-related trends in aperiodic EEG activity and alpha oscillations during early- to middle-childhood. NeuroImage, 269, 119925. https://doi.org/10.1016/j.neuroimage.2023.119925
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Aran, Ö., Garcia, S. E., Hankin, B. L., Hyde, D. C., & Davis, E. P. (2022). Signatures of emotional face processing measured by event‐related potentials in 7‐month‐old infants. Developmental Psychobiology, 65(2). Portico. https://doi.org/10.1002/dev.22361
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Dahal, P., Rauhala, O. J., Khodagholy, D., & Gelinas, J. N. (2023). Hippocampal–cortical coupling differentiates long-term memory processes. Proceedings of the National Academy of Sciences, 120(7). https://doi.org/10.1073/pnas.2207909120
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Canetta, S. E., Holt, E. S., Benoit, L. J., Teboul, E., Sahyoun, G. M., Ogden, R. T., Harris, A. Z., & Kellendonk, C. (2022). Mature parvalbumin interneuron function in prefrontal cortex requires activity during a postnatal sensitive period. ELife, 11. CLOCKSS. https://doi.org/10.7554/elife.80324
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Gill, B. J. A., Khan, F. A., Goldberg, A. R., Merricks, E. M., Wu, X., Sosunov, A. A., Sudhakar, T. D., Dovas, A., Lado, W., Michalak, A. J., Teoh, J. J., Liou, J., Frankel, W. N., McKhann, G. M., Canoll, P., & Schevon, C. A. (2022). Single unit analysis and wide-field imaging reveal alterations in excitatory and inhibitory neurons in glioma. Brain, 145(10), 3666–3680. https://doi.org/10.1093/brain/awac168
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Paquelet, G. E., Carrion, K., Lacefield, C. O., Zhou, P., Hen, R., & Miller, B. R. (2022). Single-cell activity and network properties of dorsal raphe nucleus serotonin neurons during emotionally salient behaviors. Neuron, 110(16), 2664-2679.e8. https://doi.org/10.1016/j.neuron.2022.05.015
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Gruskin, D. C., & Patel, G. H. (2022). Brain connectivity at rest predicts individual differences in normative activity during movie watching. NeuroImage, 253, 119100. https://doi.org/10.1016/j.neuroimage.2022.119100
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Trambaiolli, L. R., Peng, X., Lehman, J. F., Linn, G., Russ, B. E., Schroeder, C. E., Liu, H., & Haber, S. N. (2022). Anatomical and functional connectivity support the existence of a salience network node within the caudal ventrolateral prefrontal cortex. ELife, 11. CLOCKSS. https://doi.org/10.7554/elife.76334
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Smith, E. H., Liou, J., Merricks, E. M., Davis, T., Thomson, K., Greger, B., House, P., Emerson, R. G., Goodman, R., McKhann, G. M., Sheth, S., Schevon, C., & Rolston, J. D. (2022). Human interictal epileptiform discharges are bidirectional traveling waves echoing ictal discharges. ELife, 11. CLOCKSS. https://doi.org/10.7554/elife.73541
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