請用此 Handle URI 來引用此文件:
http://tdr.lib.ntu.edu.tw/jspui/handle/123456789/105294完整後設資料紀錄
| DC 欄位 | 值 | 語言 |
|---|---|---|
| dc.contributor.advisor | 楊世斌 | zh_TW |
| dc.contributor.advisor | Shi-Bing Yang | en |
| dc.contributor.author | 林士哲 | zh_TW |
| dc.contributor.author | Shih-Che Lin | en |
| dc.date.accessioned | 2026-09-16T16:04:13Z | - |
| dc.date.available | 2026-09-17 | - |
| dc.date.copyright | 2026-09-16 | - |
| dc.date.issued | 2026 | - |
| dc.date.submitted | 2026-08-18 03:28:44 | - |
| dc.identifier.citation | 1 Adolphs, R. & Anderson, D. J. The Neuroscience of Emotion: A New Synthesis. (Princeton University Press, 2018).
2 Affinati, A. H. et al. Cross-species analysis defines the conservation of anatomically segregated VMH neuron populations. eLife 10, e69065 (2021). https://doi.org:10.7554/eLife.69065 3 Anand, B. & Brobeck, J. Localization of a “feeding center” in the hypothalamus of the rat. Proc Soc Exp Biol Med. 77, 323-324 (1951). https://doi.org:10.3181/00379727-77-18766. 4 Anderson, David J. & Perona, P. Toward a Science of Computational Ethology. Neuron 84, 18-31 (2014). https://doi.org:https://doi.org/10.1016/j.neuron.2014.09.005 5 Anderson, D. J. Circuit modules linking internal states and social behaviour in flies and mice. Nature Reviews Neuroscience 17, 692-704 (2016). https://doi.org:10.1038/nrn.2016.125 6 Anderson, David J. & Adolphs, R. A Framework for Studying Emotions across Species. Cell 157, 187-200 (2014). https://doi.org:10.1016/j.cell.2014.03.003 7 Asaba, A., Hattori, T., Mogi, K. & Kikusui, T. Sexual attractiveness of male chemicals and vocalizations in mice. Front Neurosci 8, 231 (2014). https://doi.org:10.3389/fnins.2014.00231 8 Barbier, M. et al. Projections from the dorsomedial division of the bed nucleus of the stria terminalis to hypothalamic nuclei in the mouse. Journal of Comparative Neurology 529, 929-956 (2021). https://doi.org:https://doi.org/10.1002/cne.24988 9 Barnes, D. S. & Mrosovsky, N. Body weight regulation in ground squirrels and hypothalamically lesioned rats: Slow and sudden set point changes. Physiology & Behavior 12, 251-258 (1974). https://doi.org:https://doi.org/10.1016/0031-9384(74)90179-6 10 Bayless, D. W. et al. Limbic Neurons Shape Sex Recognition and Social Behavior in Sexually Naive Males. Cell 176, 1190-1205 e1120 (2019). https://doi.org:10.1016/j.cell.2018.12.041 11 Bian, X., Yanagawa, Y., Chen, W. & Luo, M. Cortical-Like Functional Organization of the Pheromone-Processing Circuits in the Medial Amygdala. Journal of neurophysiology 99, 77-86 (2008). https://doi.org:10.1152/jn.00902.2007 12 Bouret, S. G., Draper, S. J. & Simerly, R. B. Formation of Projection Pathways from the Arcuate Nucleus of the Hypothalamus to Hypothalamic Regions Implicated in the Neural Control of Feeding Behavior in Mice. The Journal of Neuroscience 24, 2797 (2004). https://doi.org:10.1523/JNEUROSCI.5369-03.2004 13 Bowers, J. M. & Alexander, B. K. Mice: individual recognition by olfactory cues. Science 158, 1208-1210 (1967). https://doi.org:10.1126/science.158.3805.1208 14 Bradley Efron, T. H., Iain Johnstone, Robert Tibshirani. Least angle regression. The Annals of Statistics 32, 407-499 (2004). https://doi.org:https://doi.org/10.48550/arXiv.math/0406456 15 Brandt, I., Brittebo, E. B., Feil, V. J. & Bakke, J. E. Irreversible binding and toxicity of the herbicide dichlobenil (2,6-dichlorobenzonitrile) in the olfactory mucosa of mice. Toxicol Appl Pharmacol 103, 491-501 (1990). https://doi.org:10.1016/0041-008x(90)90322-l 16 Brennan, P. A. The vomeronasal system. Cellular and Molecular Life Sciences CMLS 58, 546-555 (2001). https://doi.org:10.1007/PL00000880 17 Brennan, P. A. & Kendrick, K. M. Mammalian social odours: attraction and individual recognition. Philosophical Transactions of the Royal Society B: Biological Sciences 361, 2061-2078 (2006). https://doi.org:doi:10.1098/rstb.2006.1931 18 Brittebo, E. B., Eriksson, C., Feil, V., Bakke, J. & Brandt, I. Toxicity of 2,6-dichlorothiobenzamide (chlorthiamid) and 2,6-dichlorobenzamide in the olfactory nasal mucosa of mice. Fundam Appl Toxicol 17, 92-102 (1991). https://doi.org:10.1016/0272-0590(91)90242-v 19 Brooks, C. M., Lockwood, R. A. & Wiggins, M. L. A STUDY OF THE EFFECT OF HYPOTHALAMIC LESIONS ON THE EATING HABITS OF THE ALBINO RAT. American Journal of Physiology-Legacy Content 147, 735-741 (1946). https://doi.org:10.1152/ajplegacy.1946.147.4.735 20 Brunet, L. J., Gold, G. H. & Ngai, J. General Anosmia Caused by a Targeted Disruption of the Mouse Olfactory Cyclic Nucleotide-Gated Cation Channel. Neuron 17, 681-693 (1996). https://doi.org:10.1016/S0896-6273(00)80200-7 21 Brüning, J. C. & Fenselau, H. Integrative neurocircuits that control metabolism and food intake. Science 381, eabl7398 https://doi.org:10.1126/science.abl7398 22 Carvalho, V. M. A. et al. Representation of Olfactory Information in Organized Active Neural Ensembles in the Hypothalamus. Cell Rep 32, 108061 (2020). https://doi.org:10.1016/j.celrep.2020.108061 23 Chen, P. & Hong, W. Neural Circuit Mechanisms of Social Behavior. Neuron 98, 16-30 (2018). https://doi.org:10.1016/j.neuron.2018.02.026 24 Cheung, C. C., Kurrasch, D. M., Liang, J. K. & Ingraham, H. A. Genetic labeling of steroidogenic factor-1 (SF-1) neurons in mice reveals ventromedial nucleus of the hypothalamus (VMH) circuitry beginning at neurogenesis and development of a separate non-SF-1 neuronal cluster in the ventrolateral VMH. J Comp Neurol 521, 1268-1288 (2013). https://doi.org:10.1002/cne.23226 25 Cheung, C. C. et al. Sex-dependent changes in metabolism and behavior, as well as reduced anxiety after eliminating ventromedial hypothalamus excitatory output. Mol Metab 4, 857-866 (2015). https://doi.org:10.1016/j.molmet.2015.09.001 26 Cheung, K. Y. M., Nair, A., Li, L.-y., Shapiro, M. G. & Anderson, D. J. Population coding of predator imminence in the hypothalamus. Neuron (2025). https://doi.org:https://doi.org/10.1016/j.neuron.2025.02.003 27 Choi, Y. H., Fujikawa, T., Lee, J., Reuter, A. & Kim, K. W. Revisiting the Ventral Medial Nucleus of the Hypothalamus: The Roles of SF-1 Neurons in Energy Homeostasis. Front Neurosci 7, 71 (2013). https://doi.org:10.3389/fnins.2013.00071 28 Chou, X. L. et al. Inhibitory gain modulation of defense behaviors by zona incerta. Nat Commun 9, 1151 (2018). https://doi.org:10.1038/s41467-018-03581-6 29 Contestabile, A., Casarotto, G., Girard, B., Tzanoulinou, S. & Bellone, C. Deconstructing the contribution of sensory cues in social approach. European Journal of Neuroscience 53, 3199-3211 (2021). https://doi.org:https://doi.org/10.1111/ejn.15179 30 Correa, Stephanie M. et al. An Estrogen-Responsive Module in the Ventromedial Hypothalamus Selectively Drives Sex-Specific Activity in Females. Cell Reports 10, 62-74 (2015). https://doi.org:https://doi.org/10.1016/j.celrep.2014.12.011 31 Csillag, V. et al. Collateral connectomes of Esr1-positive hypothalamic neurons modulate defensive behavior plasticity. bioRxiv (2025). https://doi.org:10.1101/2025.01.10.632334 32 Cui, S. et al. Disrupted gonadogenesis and male-to-female sex reversal in Pod1knockout mice. Development 131, 4095-4105 (2004). https://doi.org:10.1242/dev.01266 33 Datta, S. R., Anderson, D. J., Branson, K., Perona, P. & Leifer, A. Computational Neuroethology: A Call to Action. Neuron 104, 11-24 (2019). https://doi.org:https://doi.org/10.1016/j.neuron.2019.09.038 34 Davis, A. M. et al. Loss of steroidogenic factor 1 alters cellular topography in the mouse ventromedial nucleus of the hypothalamus. Journal of neurobiology 60 4, 424-436 (2004). 35 Dellovade, T. L. et al. Disruption of the gene encoding SF-1 alters the distribution of hypothalamic neuronal phenotypes. Journal of Comparative Neurology 423, 579-589 (2000). https://doi.org:https://doi.org/10.1002/1096-9861(20000807)423:4<579::AID-CNE4>3.0.CO;2-# 36 DeNardo, L. A. et al. Temporal evolution of cortical ensembles promoting remote memory retrieval. Nature Neuroscience 22, 460-469 (2019). https://doi.org:10.1038/s41593-018-0318-7 37 Dhillon, H. et al. Leptin directly activates SF1 neurons in the VMH, and this action by leptin is required for normal body-weight homeostasis. Neuron 49, 191-203 (2006). https://doi.org:10.1016/j.neuron.2005.12.021 38 Diaz, V. & Lin, D. Neural circuits for coping with social defeat. Curr Opin Neurobiol 60, 99-107 (2020). https://doi.org:10.1016/j.conb.2019.11.016 39 Dong, H.-W. & Swanson, L. W. Projections from bed nuclei of the stria terminalis, dorsomedial nucleus: Implications for cerebral hemisphere integration of neuroendocrine, autonomic, and drinking responses. Journal of Comparative Neurology 494, 75-107 (2006). https://doi.org:https://doi.org/10.1002/cne.20790 40 Dulac, C. & Torello, A. T. Molecular detection of pheromone signals in mammals: from genes to behaviour. Nature Reviews Neuroscience 4, 551-562 (2003). https://doi.org:10.1038/nrn1140 41 Dulac, C. & Kimchi, T. Neural mechanisms underlying sex-specific behaviors in vertebrates. Current Opinion in Neurobiology 17, 675-683 (2007). https://doi.org:https://doi.org/10.1016/j.conb.2008.01.009 42 Eriksson, C., Brandt, I. & Brittebo, E. Tissue-binding and toxicity of compounds structurally related to the herbicide dichlobenil in the mouse olfactory mucosa. Food Chem Toxicol 30, 871-877 (1992). https://doi.org:10.1016/0278-6915(92)90053-n 43 Esparza, J. et al. Cell-type-specific manifold analysis discloses independent geometric transformations in the hippocampal spatial code. Neuron 113, 1098-1109.e1096 (2025). https://doi.org:10.1016/j.neuron.2025.01.022 44 Falkner, A. L. et al. Hierarchical Representations of Aggression in a Hypothalamic-Midbrain Circuit. Neuron 106, 637-648.e636 (2020). https://doi.org:10.1016/j.neuron.2020.02.014 45 Franklin, K. & Paxinos, G. Paxinos and Franklin's The mouse brain in stereotaxic coordinates 5th Edition. (2019). 46 Friard, O., Gamba, M. & Fitzjohn, R. BORIS: a free, versatile open‐source event‐logging software for video/audio coding and live observations. Methods in Ecology and Evolution 7, 1325-1330 (2016). https://doi.org:10.1111/2041-210x.12584 47 Galombos, R. Animal Behaviour: A Synthesis of Ethology and Comparative Psychology. BioScience 17, 52-53 (1967). https://doi.org:10.2307/1293875 48 Gaur, A., Pal, G. K. & Pal, P. Role of Ventromedial Hypothalamus in Sucrose-Induced Obesity on Metabolic Parameters. Annals of Neurosciences 28, 39-46 (2021). https://doi.org:10.1177/09727531211005738 49 Goodson, J. L. The vertebrate social behavior network: Evolutionary themes and variations. Hormones and Behavior 48, 11-22 (2005). https://doi.org:https://doi.org/10.1016/j.yhbeh.2005.02.003 50 Grossman, S. P. The VMH: A center for affective reactions, satiety, or both? Physiology & Behavior 1, 1-10 (1966). https://doi.org:https://doi.org/10.1016/0031-9384(66)90036-9 51 Gungor, N. Z. & Paré, D. Functional Heterogeneity in the Bed Nucleus of the Stria Terminalis. The Journal of Neuroscience 36, 8038 (2016). https://doi.org:10.1523/JNEUROSCI.0856-16.2016 52 Guo, Z. et al. Neural dynamics in the limbic system during male social behaviors. Neuron (2023). https://doi.org:https://doi.org/10.1016/j.neuron.2023.07.011 53 Gutierrez-Castellanos, N., Dias, I. C., Husain, B. F. A. & Lima, S. Functional diversity along the anteroposterior axis of the ventromedial hypothalamus. Journal of Neuroendocrinology n/a, e13447 (2024). https://doi.org:https://doi.org/10.1111/jne.13447 54 Hahn, J. D. & Swanson, L. W. Connections of the juxtaventromedial region of the lateral hypothalamic area in the male rat. Frontiers in Systems Neuroscience Volume 9 - 2015 (2015). 55 Hallonquist, J. D. & Brandes, J. S. Ventromedial hypothalamic lesions and weight gain in rats: Absence of a static phase. Physiology & Behavior 27, 709-713 (1981). https://doi.org:https://doi.org/10.1016/0031-9384(81)90244-4 56 Hammack, S. E., Braas, K. M. & May, V. in Handbook of Clinical Neurology Vol. 179 (eds Dick F. Swaab et al.) 385-402 (Elsevier, 2021). 57 Hashikawa, K. et al. Esr1(+) cells in the ventromedial hypothalamus control female aggression. Nat Neurosci 20, 1580-1590 (2017). https://doi.org:10.1038/nn.4644 58 Hashikawa, Y., Hashikawa, K., Falkner, A. L. & Lin, D. Ventromedial Hypothalamus and the Generation of Aggression. Frontiers in Systems Neuroscience Volume 11 - 2017 (2017). https://doi.org:10.3389/fnsys.2017.00094 59 Hermes, G., Li, N., Duman, C. & Duman, R. Post-weaning chronic social isolation produces profound behavioral dysregulation with decreases in prefrontal cortex synaptic-associated protein expression in female rats. Physiology & Behavior 104, 354-359 (2011). https://doi.org:https://doi.org/10.1016/j.physbeh.2010.12.019 60 Hirschberg, P. R., Sarkar, P., Teegala, S. B. & Routh, V. H. Ventromedial hypothalamus glucose-inhibited neurones: A role in glucose and energy homeostasis? Journal of Neuroendocrinology 32, e12773 (2020). https://doi.org:https://doi.org/10.1111/jne.12773 61 Hsu, A. I. & Yttri, E. A. B-SOiD, an open-source unsupervised algorithm for identification and fast prediction of behaviors. Nature Communications 12, 5188 (2021). https://doi.org:10.1038/s41467-021-25420-x 62 Ikeda, Y., Shen, W. H., Ingraham, H. A. & Parker, K. L. Developmental expression of mouse steroidogenic factor-1, an essential regulator of the steroid hydroxylases. Molecular Endocrinology 8, 654-662 (1994). https://doi.org:10.1210/mend.8.5.8058073 63 Ishii, K. K. et al. A Labeled-Line Neural Circuit for Pheromone-Mediated Sexual Behaviors in Mice. Neuron 95, 123-137.e128 (2017). https://doi.org:https://doi.org/10.1016/j.neuron.2017.05.038 64 Jais, A. & Brüning, J. C. Arcuate Nucleus-Dependent Regulation of Metabolism—Pathways to Obesity and Diabetes Mellitus. Endocrine Reviews 43, 314-328 (2022). https://doi.org:10.1210/endrev/bnab025 65 Jarvie, B. C., Chen, J. Y., King, H. O. & Palmiter, R. D. Satb2 neurons in the parabrachial nucleus mediate taste perception. Nat Commun 12, 224 (2021). https://doi.org:10.1038/s41467-020-20100-8 66 Jiao, Z. et al. Projectome-based characterization of hypothalamic peptidergic neurons in male mice. Nat Neurosci (2025). https://doi.org:10.1038/s41593-025-01919-0 67 Kamitakahara, A., Xu, B. & Simerly, R. Ventromedial hypothalamic expression of Bdnf is required to establish normal patterns of afferent GABAergic connectivity and responses to hypoglycemia. Molecular Metabolism 5, 91-101 (2016). https://doi.org:https://doi.org/10.1016/j.molmet.2015.11.007 68 Kammel, L. G. & Correa, S. M. Selective sexual differentiation of neurone populations may contribute to sex-specific outputs of the ventromedial nucleus of the hypothalamus. J Neuroendocrinol 32, e12801 (2020). https://doi.org:10.1111/jne.12801 69 Kanwal, J. K. et al. Internal State: Dynamic, Interconnected Communication Loops Distributed Across Body, Brain, and Time. Integrative and Comparative Biology 61, 867-886 (2021). https://doi.org:10.1093/icb/icab101 70 Karigo, T. et al. Distinct hypothalamic control of same- and opposite-sex mounting behaviour in mice. Nature 589, 258-263 (2021). https://doi.org:10.1038/s41586-020-2995-0 71 Kennedy, A. et al. Stimulus-specific hypothalamic encoding of a persistent defensive state. Nature 586, 730-734 (2020). https://doi.org:10.1038/s41586-020-2728-4 72 Kennedy, G. The hypothalamic control of food intake in rats. Proceedings of the Royal Society of London. B. Biological Sciences 137, 535-549 (1950). https://doi.org:10.1098/rspb.1950.0065 73 Keshavarzi, S., Power, J. M., Albers, E. H. H., Sullivan, R. K. S. & Sah, P. Dendritic Organization of Olfactory Inputs to Medial Amygdala Neurons. The Journal of Neuroscience 35, 13020 (2015). https://doi.org:10.1523/JNEUROSCI.0627-15.2015 74 Keverne, E. B. Pheromones, Vomeronasal Function, and Gender-Specific Behavior. Cell 108, 735-738 (2002). https://doi.org:https://doi.org/10.1016/S0092-8674(02)00687-6 75 Khodai, T. & Luckman, S. M. Ventromedial Nucleus of the Hypothalamus Neurons Under the Magnifying Glass. Endocrinology 162, bqab141 (2021). https://doi.org:10.1210/endocr/bqab141 76 Kim, D. W. et al. Multimodal Analysis of Cell Types in a Hypothalamic Node Controlling Social Behavior. Cell 179, 713-728 e717 (2019). https://doi.org:10.1016/j.cell.2019.09.020 77 Kindel, M. et al. Exercise-induced activation of ventromedial hypothalamic steroidogenic factor-1 neurons mediates improvements in endurance. Neuron 114, 1564-1575.e1569 (2026). https://doi.org:10.1016/j.neuron.2025.12.033 78 King, B. M. & Gaston, M. G. Reappearance of dynamic hyperphagia during the static phase in medial hypothalamic lesioned rats. Physiology & Behavior 18, 945-950 (1977). https://doi.org:https://doi.org/10.1016/0031-9384(77)90205-0 79 King, B. M. The rise, fall, and resurrection of the ventromedial hypothalamus in the regulation of feeding behavior and body weight. Physiology & Behavior 87, 221-244 (2006). https://doi.org:https://doi.org/10.1016/j.physbeh.2005.10.007 80 Klopfer, P. H. & Lorenz, K. Z. The Foundations of Ethology. BioScience (1981). 81 Krause, W. C. & Ingraham, H. A. in Sex and Gender Factors Affecting Metabolic Homeostasis, Diabetes and Obesity (ed Franck Mauvais-Jarvis) 199-213 (Springer International Publishing, 2017). 82 Krzywkowski, P., Penna, B. & Gross, C. T. Dynamic encoding of social threat and spatial context in the hypothalamus. Elife 9 (2020). https://doi.org:10.7554/eLife.57148 83 Kunwar, P. S. et al. Ventromedial hypothalamic neurons control a defensive emotion state. Elife 4 (2015). https://doi.org:10.7554/eLife.06633 84 Lanzillo, M., Gervais, M. & Croizier, S. Ontogeny of the Projections From the Dorsomedial Division of the Anterior Bed Nucleus of the Stria Terminalis to Hypothalamic Nuclei. Frontiers in Neuroscience Volume 15 - 2021 (2021). https://doi.org:10.3389/fnins.2021.748186 85 Lebow, M. A. & Chen, A. Overshadowed by the amygdala: the bed nucleus of the stria terminalis emerges as key to psychiatric disorders. Molecular Psychiatry 21, 450-463 (2016). https://doi.org:10.1038/mp.2016.1 86 LeDoux, J. & Daw, N. D. Surviving threats: neural circuit and computational implications of a new taxonomy of defensive behaviour. Nature Reviews Neuroscience 19, 269-282 (2018). https://doi.org:10.1038/nrn.2018.22 87 Lee, H. et al. Scalable control of mounting and attack by Esr1+ neurons in the ventromedial hypothalamus. Nature 509, 627-632 (2014). https://doi.org:10.1038/nature13169 88 Leypold, B. G. et al. Altered sexual and social behaviors in trp2 mutant mice. Proceedings of the National Academy of Sciences 99, 6376-6381 (2002). https://doi.org:10.1073/pnas.082127599 89 Li, Y. et al. Neuronal Representation of Social Information in the Medial Amygdala of Awake Behaving Mice. Cell 171, 1176-1190.e1117 (2017). https://doi.org:https://doi.org/10.1016/j.cell.2017.10.015 90 Liberles, S. D. Mammalian Pheromones. Annual Review of Physiology 76, 151-175 (2014). https://doi.org:https://doi.org/10.1146/annurev-physiol-021113-170334 91 Lin, D. et al. Functional identification of an aggression locus in the mouse hypothalamus. Nature 470, 221-226 (2011). https://doi.org:10.1038/nature09736 92 Lindberg, D., Chen, P. & Li, C. Conditional viral tracing reveals that steroidogenic factor 1-positive neurons of the dorsomedial subdivision of the ventromedial hypothalamus project to autonomic centers of the hypothalamus and hindbrain. J Comp Neurol 521, 3167-3190 (2013). https://doi.org:10.1002/cne.23338 93 Linderman, S., Nichols, A., Blei, D., Zimmer, M. & Paninski, L. Hierarchical recurrent state space models reveal discrete and continuous dynamics of neural activity in C. elegans. bioRxiv, 621540 (2019). https://doi.org:10.1101/621540 94 Linderman, S. et al. Recurrent switching linear dynamical systems. arXiv 1610.08466 (2016). 95 Liu, D. et al. A hypothalamic circuit underlying the dynamic control of social homeostasis. Nature 640, 1000-1010 (2025). https://doi.org:10.1038/s41586-025-08617-8 96 Liu, M., Kim, D. W., Zeng, H. & Anderson, D. J. Make war not love: The neural substrate underlying a state-dependent switch in female social behavior. Neuron 110, 841-856 e846 (2022). https://doi.org:10.1016/j.neuron.2021.12.002 97 Liu, M., Nair, A., Coria, N., Linderman, S. W. & Anderson, D. J. Encoding of female mating dynamics by a hypothalamic line attractor. Nature 634, 901-909 (2024). https://doi.org:10.1038/s41586-024-07916-w 98 Lo, L. et al. Connectional architecture of a mouse hypothalamic circuit node controlling social behavior. Proceedings of the National Academy of Sciences 116, 7503-7512 (2019). https://doi.org:10.1073/pnas.1817503116 99 Maheswaranathan, N., Williams, A., Golub, M., Ganguli, S. & Sussillo, D. Reverse engineering recurrent networks for sentiment classification reveals line attractor dynamics. Advances in neural information processing systems 32 (2019). 100 Maita, I., Bazer, A., Blackford, J. U. & Samuels, B. A. in Handbook of Clinical Neurology Vol. 179 (eds Dick F. Swaab et al.) 403-418 (Elsevier, 2021). 101 Majdic, G. et al. Knockout Mice Lacking Steroidogenic Factor 1 Are a Novel Genetic Model of Hypothalamic Obesity. Endocrinology 143, 607-614 (2002). https://doi.org:10.1210/endo.143.2.8652 102 Mathis, A. et al. DeepLabCut: markerless pose estimation of user-defined body parts with deep learning. Nature Neuroscience 21, 1281-1289 (2018). https://doi.org:10.1038/s41593-018-0209-y 103 Matthews, G. A. & Tye, K. M. Neural mechanisms of social homeostasis. Annals of the New York Academy of Sciences 1457, 5-25 (2019). https://doi.org:https://doi.org/10.1111/nyas.14016 104 Mei, L., Osakada, T. & Lin, D. Hypothalamic control of innate social behaviors. Science 382, 399-404 (2023). https://doi.org:10.1126/science.adh8489 105 Mountoufaris, G. et al. A line attractor encoding a persistent internal state requires neuropeptide signaling. Cell 187, 5998-6015 e5918 (2024). https://doi.org:10.1016/j.cell.2024.08.015 106 Myers, B., Mark Dolgas, C., Kasckow, J., Cullinan, W. E. & Herman, J. P. Central stress-integrative circuits: forebrain glutamatergic and GABAergic projections to the dorsomedial hypothalamus, medial preoptic area, and bed nucleus of the stria terminalis. Brain Structure and Function 219, 1287-1303 (2014). https://doi.org:10.1007/s00429-013-0566-y 107 Nair, A. et al. An approximate line attractor in the hypothalamus encodes an aggressive state. Cell 186, 178-193 e115 (2023). https://doi.org:10.1016/j.cell.2022.11.027 108 Newman, S. W. The Medial Extended Amygdala in Male Reproductive Behavior A Node in the Mammalian Social Behavior Network. Annals of the New York Academy of Sciences 877, 242-257 (1999). https://doi.org:https://doi.org/10.1111/j.1749-6632.1999.tb09271.x 109 Niesink, R. J. M. & Van Ree, J. M. Short-term isolation increases social interactions of male rats: A parametric analysis. Physiology & Behavior 29, 819-825 (1982). https://doi.org:https://doi.org/10.1016/0031-9384(82)90331-6 110 Niimi, K. et al. Heterogeneous electrophysiological and morphological properties of neurons in the mouse medial amygdala in vitro. Brain Research 1480, 41-52 (2012). https://doi.org:https://doi.org/10.1016/j.brainres.2012.08.050 111 O'Connell, L. A. & Hofmann, H. A. The Vertebrate mesolimbic reward system and social behavior network: A comparative synthesis. Journal of Comparative Neurology 519, 3599-3639 (2011). https://doi.org:https://doi.org/10.1002/cne.22735 112 Ortiz-Juza, M. M., Alghorazi, R. A. & Rodriguez-Romaguera, J. Cell-type diversity in the bed nucleus of the stria terminalis to regulate motivated behaviors. Behavioural Brain Research 411, 113401 (2021). https://doi.org:https://doi.org/10.1016/j.bbr.2021.113401 113 Osakada, T. et al. A dedicated hypothalamic oxytocin circuit controls aversive social learning. Nature 626, 347-356 (2024). https://doi.org:10.1038/s41586-023-06958-w 114 Park, S. K. et al. Ultrastructure and synaptic connectivity of main and accessory olfactory bulb efferent projections terminating in the rat anterior piriform cortex and medial amygdala. Brain Structure and Function 219, 1603-1613 (2014). https://doi.org:10.1007/s00429-013-0588-5 115 Peça, J. et al. Shank3 mutant mice display autistic-like behaviours and striatal dysfunction. Nature 472, 437-442 (2011). https://doi.org:10.1038/nature09965 116 Pennington, Z. T. et al. ezTrack-A Step-by-Step Guide to Behavior Tracking. Curr Protoc 1, e255 (2021). https://doi.org:10.1002/cpz1.255 117 Pereira, T. D. et al. SLEAP: A deep learning system for multi-animal pose tracking. Nature Methods 19, 486-495 (2022). https://doi.org:10.1038/s41592-022-01426-1 118 Perez-Gomez, A. et al. Innate Predator Odor Aversion Driven by Parallel Olfactory Subsystems that Converge in the Ventromedial Hypothalamus. Curr Biol 25, 1340-1346 (2015). https://doi.org:10.1016/j.cub.2015.03.026 119 Petrovich, G. D., Ross, C. A., Mody, P., Holland, P. C. & Gallagher, M. Central, But Not Basolateral, Amygdala Is Critical for Control of Feeding by Aversive Learned Cues. The Journal of Neuroscience 29, 15205 (2009). https://doi.org:10.1523/JNEUROSCI.3656-09.2009 120 Petrulis, A., Fiber, J. M. & Swann, J. M. in Hormones, Brain and Behavior (Third Edition) (eds Donald W. Pfaff & Marian Joëls) 329-343 (Academic Press, 2017). 121 Qualls-Creekmore, E. & Münzberg, H. Modulation of Feeding and Associated Behaviors by Lateral Hypothalamic Circuits. Endocrinology 159, 3631-3642 (2018). https://doi.org:10.1210/en.2018-00449 122 Rahy, R., Asari, H. & Gross, C. T. Sensory-thresholded switch of neural firing states in a computational model of the ventromedial hypothalamus. Frontiers in Computational Neuroscience Volume 16 - 2022 (2022). https://doi.org:10.3389/fncom.2022.964634 123 Remedios, R. et al. Social behaviour shapes hypothalamic neural ensemble representations of conspecific sex. Nature 550, 388-392 (2017). https://doi.org:10.1038/nature23885 124 Roth, B. L. DREADDs for Neuroscientists. Neuron 89, 683-694 (2016). https://doi.org:https://doi.org/10.1016/j.neuron.2016.01.040 125 Sakurai, K. et al. Capturing and Manipulating Activated Neuronal Ensembles with CANE Delineates a Hypothalamic Social-Fear Circuit. Neuron 92, 739-753 (2016). https://doi.org:10.1016/j.neuron.2016.10.015 126 Saper, C. B., Swanson, L. W. & Cowan, W. M. The efferent connections of the ventromedial nucleus of the hypothalamus of the rat. Journal of Comparative Neurology 169, 409-442 (1976). https://doi.org:https://doi.org/10.1002/cne.901690403 127 Shamash, P., Carandini, M., Harris, K. & Steinmetz, N. A tool for analyzing electrode tracks from slice histology. bioRxiv, 447995 (2018). https://doi.org:10.1101/447995 128 Shao, Y.-Q., Fan, L., Wu, W.-Y., Zhu, Y.-J. & Xu, H.-T. A developmental switch between electrical and neuropeptide communication in the ventromedial hypothalamus. Current Biology 32, 3137-3145.e3133 (2022). https://doi.org:https://doi.org/10.1016/j.cub.2022.05.029 129 Shimazu, T. & Minokoshi, Y. Systemic Glucoregulation by Glucose-Sensing Neurons in the Ventromedial Hypothalamic Nucleus (VMH). Journal of the Endocrine Society 1, 449-459 (2017). https://doi.org:10.1210/js.2016-1104 130 Silva, B. A. et al. Independent hypothalamic circuits for social and predator fear. Nat Neurosci 16, 1731-1733 (2013). https://doi.org:10.1038/nn.3573 131 Silva, B. A. et al. The ventromedial hypothalamus mediates predator fear memory. European Journal of Neuroscience 43, 1431-1439 (2016). https://doi.org:https://doi.org/10.1111/ejn.13239 132 Simpson, E. H. et al. Lights, fiber, action! A primer on in vivo fiber photometry. Neuron 112, 718-739 (2024). https://doi.org:https://doi.org/10.1016/j.neuron.2023.11.016 133 Smith, D. V. & Travers, J. B. A metric for the breadth of tuning of gustatory neurons. Chemical Senses & Flavor 4, 215-229 (1979). https://doi.org:10.1093/chemse/4.3.215 134 Stagkourakis, S., Spigolon, G., Liu, G. & Anderson, D. J. Experience-dependent plasticity in an innate social behavior is mediated by hypothalamic LTP. Proc Natl Acad Sci U S A 117, 25789-25799 (2020). https://doi.org:10.1073/pnas.2011782117 135 Stagkourakis, S. et al. Anatomically distributed neural representations of instincts in the hypothalamus. bioRxiv, 2023.2011.2021.568163 (2023). https://doi.org:10.1101/2023.11.21.568163 136 Sternson, S. M., Shepherd, G. M. G. & Friedman, J. M. Topographic mapping of VMH → arcuate nucleus microcircuits and their reorganization by fasting. Nature Neuroscience 8, 1356-1363 (2005). https://doi.org:10.1038/nn1550 137 Steuernagel, L. et al. HypoMap-a unified single-cell gene expression atlas of the murine hypothalamus. Nat Metab 4, 1402-1419 (2022). https://doi.org:10.1038/s42255-022-00657-y 138 Stowers, L., Holy, T. E., Meister, M., Dulac, C. & Koentges, G. Loss of Sex Discrimination and Male-Male Aggression in Mice Deficient for TRP2. Science 295, 1493-1500 (2002). https://doi.org:10.1126/science.1069259 139 Stowers, L. & Kuo, T.-H. Mammalian pheromones: emerging properties and mechanisms of detection. Current Opinion in Neurobiology 34, 103-109 (2015). https://doi.org:https://doi.org/10.1016/j.conb.2015.02.005 140 Sukikara, M. H., Mota-Ortiz, S. R., Baldo, M. V., Felicio, L. F. & Canteras, N. S. The periaqueductal gray and its potential role in maternal behavior inhibition in response to predatory threats. Behavioural Brain Research 209, 226-233 (2010). https://doi.org:https://doi.org/10.1016/j.bbr.2010.01.048 141 Suyama, S. & Yada, T. New insight into GABAergic neurons in the hypothalamic feeding regulation. The Journal of Physiological Sciences 68, 717-722 (2018). https://doi.org:https://doi.org/10.1007/s12576-018-0622-8 142 Takács, S., Gries, R. & Gries, G. Sex Hormones Function as Sex Attractant Pheromones in House Mice and Brown Rats. ChemBioChem 18 (2017). https://doi.org:10.1002/cbic.201700336 143 Takahashi, A. The role of social isolation stress in escalated aggression in rodent models. Neuroscience Research 211, 75-84 (2025). https://doi.org:https://doi.org/10.1016/j.neures.2022.07.009 144 Tinbergen, N. The study of instinct., (Clarendon Press/Oxford University Press., 1951). 145 Tobias, B. C. et al. Characterization of ventromedial hypothalamus activity during exposure to innate and conditioned threats. Eur J Neurosci 57, 1053-1067 (2023). https://doi.org:10.1111/ejn.15937 146 Todd, W. D. et al. A hypothalamic circuit for the circadian control of aggression. Nat Neurosci 21, 717-724 (2018). https://doi.org:10.1038/s41593-018-0126-0 147 Tong, Q. et al. Synaptic glutamate release by ventromedial hypothalamic neurons is part of the neurocircuitry that prevents hypoglycemia. Cell Metab 5, 383-393 (2007). https://doi.org:10.1016/j.cmet.2007.04.001 148 Tran, L. T. et al. Hypothalamic control of energy expenditure and thermogenesis. Experimental & Molecular Medicine 54, 358-369 (2022). https://doi.org:10.1038/s12276-022-00741-z 149 Tran, P. V. et al. Diminished hypothalamic bdnf expression and impaired VMH function are associated with reduced SF-1 gene dosage. Journal of Comparative Neurology 498, 637-648 (2006). https://doi.org:https://doi.org/10.1002/cne.21070 150 Tu, L., Fukuda, M., Tong, Q. & Xu, Y. The ventromedial hypothalamic nucleus: watchdog of whole-body glucose homeostasis. Cell & Bioscience 12, 71 (2022). https://doi.org:10.1186/s13578-022-00799-2 151 Umberson, D. & Donnelly, R. Social Isolation: An Unequally Distributed Health Hazard. Annual Review of Sociology 49, 379-399 (2023). https://doi.org:https://doi.org/10.1146/annurev-soc-031021-012001 152 van Veen, J. E. et al. Hypothalamic oestrogen receptor alpha establishes a sexually dimorphic regulatory node of energy expenditure. Nature Metabolism 2, 351-363 (2020). https://doi.org:10.1038/s42255-020-0189-6 153 van Veen, J. E. et al. Single cell profiling of the VMH reveals a sexually dimorphic regulatory node of energy expenditure. bioRxiv, 549725 (2019). https://doi.org:10.1101/549725 154 Vinograd, A., Nair, A., Kim, J. H., Linderman, S. W. & Anderson, D. J. Causal evidence of a line attractor encoding an affective state. Nature 634, 910-918 (2024). https://doi.org:10.1038/s41586-024-07915-x 155 Viskaitis, P. et al. Modulation of SF1 Neuron Activity Coordinately Regulates Both Feeding Behavior and Associated Emotional States. Cell Rep 21, 3559-3572 (2017). https://doi.org:10.1016/j.celrep.2017.11.089 156 Wang, L., Chen, I. Z. & Lin, D. Collateral pathways from the ventromedial hypothalamus mediate defensive behaviors. Neuron 85, 1344-1358 (2015). https://doi.org:10.1016/j.neuron.2014.12.025 157 Wang, L. et al. Hypothalamic Control of Conspecific Self-Defense. Cell Rep 26, 1747-1758 e1745 (2019). https://doi.org:10.1016/j.celrep.2019.01.078 158 Wei, D., Talwar, V. & Lin, D. Neural circuits of social behaviors: Innate yet flexible. Neuron 109, 1600-1620 (2021). https://doi.org:10.1016/j.neuron.2021.02.012 159 Wei, D. et al. A hypothalamic pathway that suppresses aggression toward superior opponents. Nat Neurosci 26, 774-787 (2023). https://doi.org:10.1038/s41593-023-01297-5 160 Williams, G. et al. The hypothalamus and the control of energy homeostasis: Different circuits, different purposes. Physiology & Behavior 74, 683-701 (2001). https://doi.org:https://doi.org/10.1016/S0031-9384(01)00612-6 161 Yamada, T. et al. Fecundity difference is related to the production of reproductive pheromones in rats. Reproduction 168 (2024). https://doi.org:10.1530/REP-24-0104 162 Yamamoto, R., Ahmed, N., Ito, T., Gungor, N. Z. & Pare, D. Optogenetic Study of Anterior BNST and Basomedial Amygdala Projections to the Ventromedial Hypothalamus. eNeuro 5 (2018). https://doi.org:10.1523/ENEURO.0204-18.2018 163 Yang, B., Karigo, T. & Anderson, D. J. Transformations of neural representations in a social behaviour network. Nature 608, 741-749 (2022). https://doi.org:10.1038/s41586-022-05057-6 164 Yang, C. F. et al. Sexually Dimorphic Neurons in the Ventromedial Hypothalamus Govern Mating in Both Sexes and Aggression in Males. Cell 153, 896-909 (2013). https://doi.org:10.1016/j.cell.2013.04.017 165 Yang, F. et al. A GABAergic neural circuit in the ventromedial hypothalamus mediates chronic stress–induced bone loss. The Journal of Clinical Investigation 130, 6539-6554 (2020). https://doi.org:10.1172/JCI136105 166 Yang, T. et al. Hypothalamic neurons that mirror aggression. Cell 186, 1195-1211 e1119 (2023). https://doi.org:10.1016/j.cell.2023.01.022 167 Yin, L. et al. VMHvll(Cckar) cells dynamically control female sexual behaviors over the reproductive cycle. Neuron 110, 3000-3017 e3008 (2022). https://doi.org:10.1016/j.neuron.2022.06.026 168 Zha, X. & Xu, X. Dissecting the hypothalamic pathways that underlie innate behaviors. Neuroscience Bulletin 31, 629-648 (2015). https://doi.org:10.1007/s12264-015-1564-2 169 Zhang, J., Chen, D., Sweeney, P. & Yang, Y. An excitatory ventromedial hypothalamus to paraventricular thalamus circuit that suppresses food intake. Nature Communications 11, 6326 (2020). https://doi.org:10.1038/s41467-020-20093-4 170 Zhang, L., Hernandez-Sanchez, D. & Herzog, H. Regulation of Feeding-Related Behaviors by Arcuate Neuropeptide Y Neurons. Endocrinology 160, 1411-1420 (2019). https://doi.org:10.1210/en.2019-00056 | - |
| dc.identifier.uri | http://tdr.lib.ntu.edu.tw/jspui/handle/123456789/105294 | - |
| dc.description.abstract | 下視丘腹中側核 (Ventromedial Nucleus of Hypothalamus, VMH) 係主掌本能行為、食慾、與代謝調控的關鍵樞紐,腹中側核內具備高度異質之神經組成,其中表現類固醇生成因子一型 (Steroidogenic Factor 1, SF1)之神經元亞群已知對動物遭遇掠食者的本能防禦行為有至關重要的調控能力。然腹中側核亦為社交行為神經迴路的中樞節點,而VMHSF1神經元在社交互動過程中的角色仍舊未明。
本研究採用活體鈣影像(In vivo Ca2+ Imaging)技術結合基因轉殖鼠以選擇性紀錄清醒、自由活動雄性小鼠的VMHSF1神經元活動。我們發現部分VMHSF1神經元對社交刺激有強烈反應,且對遭遇之同種所屬性別有專一且偏好雄性之編碼模式。為解析VMHSF1神經元產生性別選擇性反應所仰賴的感覺通道 (Sensory Modality),我們嘗試感官剝奪並發現雄性小鼠散發的非揮發性費洛蒙為VMHSF1神經元建構雄性偏好之重要感官成分。先前研究發現終紋床核 (Bed nucleus of Stria Terminalis, BNST) 能接收並傳遞社交相關化學感覺資訊至下視丘,因此我們嘗試以光遺傳學 (Optogenetics) 技術操縱BNST投射至VMH之神經迴路。當BNST-VMH迴路遭到抑制,VMHSF1神經元不再表現族群層級的性別偏好,上述結果揭示了VMHSF1神經元編碼社交目標性別的感官與神經迴路機制。 為了探究在社交情境下VMHSF1神經元活動與社交行為之關聯性,我們讓小鼠執行交互社交測驗(Reciprocal Social Interaction test, RSI)並同時執行針對VMHSF1神經元之鈣影像紀錄。行為解析結果顯示VMHSF1神經元的活化與探索性社交互動時機高度重合,惟在攻擊、交配、逃跑等終結行為 (Consummatory Behaviors) 出現時被強烈抑制,此外若以化學遺傳學 (Chemogenetics) 手段降低VMHSF1神經元可激活性,小鼠在社交情境下執行探索行為的頻率與時長都顯著下降。據上述結果,我們推想VMHSF1神經元在社交互動過程中的激活編碼著重資訊搜集與分析的欲求階段 (Appetitive Phase),驅使動物靠近並嗅探同種個體,一但接收的感官訊息完成處理並做出決策,VMHSF1神經元對應的探索行為模組就會被關閉,以確保後續終結行為的精確執行。 然而VMHSF1神經族群也編碼著應對掠食風險的防禦內在狀態,使動物尋找藏匿處、遠離捕食者或僵直。為理解VMHSF1神經族群如何既能驅動遠離目標的防禦行為又得以產生促進探索目標的社交行為,我們設計了掠食者防禦測驗 (Predator Defense Assay, PDA)。當我們將同一群VMHSF1神經元在PDA以及RSI情境下的活動相互對照,我們發現遭遇掠食者和遭遇社交情境不僅能對應至VMHSF1族群完全迥異的活動模式,動態系統分析結果也揭示掠食者和社交分別能讓VMHSF1族群進入具備獨特幾何特徵的神經狀態 (Neural State)。若細究單一神經尺度的情境或行為關聯性,我們也發現掠食者所召集的是與編碼社交刺激者近乎不相交的VMHSF1神經亞群,這代表VMHSF1神經元其實不是功能上均質、單純掌管掠食者恐懼反應的行為模組。 最後,為近一步深究功能多樣的VMHSF1神經元如何處理本能需求間的衝突,我們設計了進食社交衝突測驗(Feeding-Social Conflict Test, FSC)。我們使用纖維光度計(Fiber Photometry)與鈣離子影像分別觀察族群或單細胞層級VMHSF1神經活動如何表徵動物行為在社交互動與進食行為間的偏好。我們發現在動物飢餓使進食偏好上升的同時,VMHSF1神經元對食物與社交刺激的編碼都更具選擇性,大大降低非專一性神經元之佔比,此外在群體層級神經元間的連結與同步率亦顯著上升。這顯示在面對進食與社交的選擇時,VMHSF1神經元並非以典型的模組競爭編碼並影響行為偏好,而是以更廣域全面的神經網路重塑來調整刺激物表徵的精確性以及群體的輸出強度,以因應當下行為決策之需求,無論是優先保持彈性或盡量減少錯誤。上述研究發現有助我們重新審視過往將下視丘神經核單純看做特定行為或生理調控開關的認知,這些演化上原始的腦部結構之所以能在缺乏皮質等高等認知區域的狀態下確保物種存續,或許正是因為他們本就具備足以應付基本決策的運算功能。 | zh_TW |
| dc.description.abstract | Innate social behaviors rely on hypothalamic circuits that encode internal motivational states. The ventromedial nucleus of hypothalamus (VMH) is a predominant hub amidst the hypothalamic social network, with steroidogenic factor-1 (SF1)-expressing neurons as one of its major neural subgroups. While VMHSF1 neurons are established drivers of predator-induced defensive behaviors, their potential roles in social contexts remain unknown.
To determine how VMHSF1 neurons encode social cues, we used cell-type–specific Ca²⁺ imaging in freely behaving sf1-cre male mice. Our results showed that a subgroup of VMHSF1 neurons were strongly activated by social stimuli, with a male-biased sex preference. In addition, conspecifics with different sexes recruited distinct VMHSF1 neural subsets, establishing a stable and decodable sex representation. Through sensory ablation and circuit perturbation, we identified pheromonal signal and inputs from the bed nucleus of stria terminalis (BNST) as critical sensory and circuit components for shaping the male-preferring conspecific sex representation of VMHSF1 neurons, respectively. During social interaction, VMHSF1 neurons were highly tuned to investigative behaviors, showing sex-specific population trajectories in low-dimensional neural subspace. These neurons are selectively engaged in the appetitive phase of male-male interaction but inhibited during consummatory or defensive episodes, indicating a state-dependent gating of social drive. Moreover, encountering predator cues and social cues evoke highly separable neural states in VMHSF1 population, so did behavioral actions correspond to social investigation or predatory defense, which were likely implemented through stimulus-specific recruitment of distinct neural subgroups. In addition, silencing VMHSF1 neurons reduced the duration of social investigation, further confirming their causal role under social context. Lastly, we tested how VMHSF1 neurons encode behavioral preference while facing conflicting survival needs. Optogenetic stimulation of entire VMHSF1 population overwhelmingly evoked defensive actions while suppressing social needs, implying predator defensive state as a dominating behavioral module over that driving social investigation. However, the conflict between socializing and feeding, as revealed by our FSC behavioral paradigm, was hunger-dependently represented in VMHSF1 population. 24-hour fasting rendered individual VMHSF1 neurons more selective to either social or food cues, strengthened the overall network coupling, and sharpened the contrast in population coding between food- and social-oriented explorations. Moreover, chemogenetic VMHSF1 activation induced a defense-like behavioral state, making animal prioritizing food consumption over social interaction even in sated metabolic state. Altogether, our work not only identified a VMHSF1 subpopulation that transforms conspecific cues into a motivational state promoting social investigation but challenge the longstanding notion that each hypothalamic circuit node acts as simple modular switch for singular motivational state. Hence, this study extends the functional repertoire of VMHSF1 neurons beyond predator defense and illustrates how hypothalamic circuits carry out complex computations for survival behaviors. | en |
| dc.description.provenance | Submitted by admin ntu (admin@lib.ntu.edu.tw) on 2026-09-16T16:04:13Z No. of bitstreams: 0 | en |
| dc.description.provenance | Made available in DSpace on 2026-09-16T16:04:13Z (GMT). No. of bitstreams: 0 | en |
| dc.description.tableofcontents | 口試委員會審定書 I
致謝 II 中文摘要 VII Abstract X Table of contents XIII List of figures XXII Chapter 1. Introduction 1 1.1 Internal state 2 1.2 Innate social behaviors 3 1.3 The neural substrates for social behavioral control 6 1.4 Sensory pathways for social signal processing 8 1.5 Ventromedial hypothalamic nucleus 10 1.6 Steroidogenic factor 1 (SF1) and VMHSF1 neurons 12 Chapter 2. VMHSF1 neural representation of social cues 17 2.1 Introduction 17 2.2 Methods 20 2.2.1 Animals 20 2.2.2 Viruses 21 2.2.3 Behavior tests 21 2.2.4 Stereotaxic surgery 22 2.2.5 Major olfactory epithelium (MOE) ablation 23 2.2.6 Gonad-removal surgery 24 2.2.7 Stimulus exposure test 25 2.2.8 Repetitive conspecific exposure 25 2.2.9 Fiber photometry data acquisition 26 2.2.10 Microendoscopic imaging data acquisition 27 2.2.11 Microendoscopic imaging with optogenetic circuit manipulation 28 2.2.12 Histology 28 2.2.13 Photometry data preprocessing 29 2.2.14 Spike detection from photometry bulk Ca2+ traces 30 2.2.15 Microendoscopic data preprocessing and ROI extraction 31 2.2.16 Analyzing neural responses to external stimulus presentation 32 2.2.17 Analyzing neural response to BNST-VMH pathway stimulation 33 2.2.18 Preference score 34 2.2.19 Fitting decay time constant 34 2.2.20 Autocorrelation half width 36 2.2.21 Pearson correlation coefficient 36 2.2.22 Choice probability 37 2.2.23 Decoder analysis 37 2.2.24 Dimensionality reduction 38 2.2.25 Quantification and statistical analysis 38 2.3 Results 40 2.3.1 VMHSF1 neural population is robustly activated by social cue with male-biased sex preference 40 2.3.2 VMHSF1 neurons encode conspecific stimulus with sex-specificity 41 2.3.3 Pheromonal signal is critical for male-biased conspecific sex response of VMHSF1 neurons 43 2.3.4 Reduced VMHSF1 populational male preference to gonadectomized conspecific is not due to adaptation 46 2.3.5 BNST-VMH pathway functionally modulates VMHSF1 neurons 48 2.3.6 BNST-VMH pathway is required for male-biased population sex preference of VMHSF1 neurons 50 2.4 Discussion 51 Chapter 3. Behavioral coding of VMHSF1 neurons during social interaction 57 3.1 Introduction 57 3.2 Methods 59 3.2.1 Animals 59 3.2.2 Viruses 59 3.2.3 Reciprocal social interaction test (RSI) 59 3.2.4 Chemogenetic inhibition 60 3.2.5 Immunostaining 60 3.2.6 Behavioral annotations 62 3.2.7 Definition of sex-biased neurons 62 3.2.8 Analyzing neural response to behaviors 63 3.2.9 Hierarchical clustering 64 3.2.10 Decoder analysis 64 3.2.11 Generalized linear model 65 3.2.12 Cosine similarity 65 3.3 Results 67 3.3.1 VMHSF1 population activity encodes multiple social actions 67 3.3.2 VMHSF1 neurons are strongly tuned to social investigation with sex-specificity 68 3.3.3 Pheromonal and BNST inputs are dispensable for sex-specific investigation coding 70 3.3.4 VMHSF1 neurons are silenced during male-directed consummatory and defensive social behaviors 72 3.3.5 Population activity trajectories diverge in a behavior-specific manner 75 3.3.6 VMHSF1 neurons modulate the level of engagement in social investigation 77 3.4 Discussion 79 Chapter 4. VMHSF1 neurons control multiple behavioral states through distinct functional subpopulations 85 4.1 Introduction 85 4.2 Methods 87 4.2.1 Animals 87 4.2.2 Viruses 87 4.2.3 Stereotaxic surgery 87 4.2.4 Light-dark box test 87 4.2.5 Predatory stimulus 88 4.2.6 Predator defense assay (PDA) 89 4.2.7 Optogenetic stimulation 89 4.2.8 Behavioral annotations 90 4.2.9 Identifying stimulus-specific neurons 91 4.2.10 Dynamical system modeling 93 4.2.11 State occupancy divergence (Jensen-Shannon divergence) 97 4.2.12 Context decoding via logistic regression 98 4.2.13 Estimation of time constants 99 4.2.14 Flow field visualization 100 4.2.15 Energy landscape plotting 100 4.3 Results 101 4.3.1 Identifying the most potent predatory cues for activating VMHSF1 neurons 101 4.3.2 VMHSF1 neurons are selectively responsive to either social or predatory stimuli 102 4.3.3 Stimulus-specific representation among VMHSF1 population is achieved through recruiting distinct neural subgroups 104 4.3.4 VMHSF1 neurons stably encode stimulus identity across days 105 4.3.5 Design and validation of the predator defense assay 106 4.3.6 Social and predatory behavioral contexts evoke distinct VMHSF1 population states 108 4.3.7 VMHSF1 Population state associated with social interaction exhibits line-attractor dynamics 111 4.3.8 Social investigation and predator defense recruit discrepant subsets of VMHSF1 neurons 114 4.3.9 Activating VMHSF1 neurons triggers defensive behaviors and suppresses social investigation 116 4.4 Discussion 118 Chapter 5. Network level arbitration of survival conflict in the VMHSF1 population 124 5.1 Introduction 124 5.2 Material and methods 128 5.2.1 Animals 128 5.2.2 Viruses 128 5.2.3 Feeding-Social Conflict (FSC) test 129 5.2.4 Chemogenetic manipulation 131 5.2.5 Behavioral data processing 131 5.2.6 Preprocessing neural data 133 5.2.7 Extracting zone-transition-associated Ca2+ dynamics 133 5.3 Results 134 5.3.1 Design and validation of the Feeding-Social Conflict (FSC) test 134 5.3.2 Fasting alters the VMHSF1 population response to food and social interaction 136 5.3.3 Autistic mice showed decreased behavioral social preference and state-dependent reduction in VMHSF1 social response 138 5.3.4 Hunger sharpens single-neuron cue specificity for competing drives 140 5.3.5 Metabolic need orthagonalizes population coding and drives network synchronization in VMHSF1 neurons 141 5.3.6 Non-selective VMHSF1 activation generates a fasted-like behavioral preference 144 5.4 Discussion 145 Conclusions 151 References 156 Figures 172 | - |
| dc.language.iso | en | - |
| dc.subject | 下視丘腹中側核 | - |
| dc.subject | 類固醇⽣成因⼦⼀型神經元 | - |
| dc.subject | 終紋床核 | - |
| dc.subject | 內在狀態 | - |
| dc.subject | 社交⾏為 | - |
| dc.subject | 防禦⾏為 | - |
| dc.subject | 族群神經編碼 | - |
| dc.subject | Ventromedial Hypothalamus | - |
| dc.subject | SF1 Neurons | - |
| dc.subject | Bed Nucleus of Stria Terminalis | - |
| dc.subject | Internal State | - |
| dc.subject | Social Behavior | - |
| dc.subject | Defensive Behavior | - |
| dc.subject | Population Coding | - |
| dc.title | 下視丘SF1神經元對本能⾏為的狀態依賴性編碼 | zh_TW |
| dc.title | State-dependent Encoding of Survival Behaviors by Hypothalamic SF1 Neurons | en |
| dc.type | Thesis | - |
| dc.date.schoolyear | 114-2 | - |
| dc.description.degree | 博士 | - |
| dc.contributor.coadvisor | 姚皓傑 | zh_TW |
| dc.contributor.coadvisor | Hau-Jie Yau | en |
| dc.contributor.oralexamcommittee | 連正章;林士傑;陳示國 | zh_TW |
| dc.contributor.oralexamcommittee | Cheng-Chang Lien;Shih-Chieh Lin;Shih-Kuo Chen | en |
| dc.subject.keyword | 下視丘腹中側核; 類固醇⽣成因⼦⼀型神經元; 終紋床核; 內在狀態; 社交⾏為; 防禦⾏為; 族群神經編碼 | zh_TW |
| dc.subject.keyword | Ventromedial Hypothalamus; SF1 Neurons; Bed Nucleus of Stria Terminalis; Internal State; Social Behavior; Defensive Behavior; Population Coding | en |
| dc.relation.page | 274 | - |
| dc.identifier.doi | 10.6342/NTU202604339 | - |
| dc.rights.note | 同意授權(全球公開) | - |
| dc.date.accepted | 2026-08-20 | - |
| dc.contributor.author-college | 生命科學院 | - |
| dc.contributor.author-dept | 跨領域神經科學國際研究生博士學位學程 | - |
| dc.date.embargo-lift | 2031-08-14 | - |
| 顯示於系所單位: | 跨領域神經科學國際研究生博士學位學程 | |
文件中的檔案:
| 檔案 | 描述 | 大小 | 格式 | |
|---|---|---|---|---|
| ntu-114-2.pdf 此日期後於網路公開 2031-08-14 | 38.78 MB | Adobe PDF | ||
| ntu-114-2.pdf 此日期後於網路公開 2031-08-14 | 38.78 MB | Adobe PDF |
系統中的文件,除了特別指名其著作權條款之外,均受到著作權保護,並且保留所有的權利。
