Updated on 2026/08/16

写真a

 
OSAKADA TAKUYA
 
Organization
School of Life Science and Technology Specially Appointed Associate Professor
Title
Specially Appointed Associate Professor
External link

Research Interests

  • フェロモン

  • オキシトシン

  • 社会性行動

  • 神経科学

  • 視床下部

Research Areas

  • Life Science / Applied biochemistry

  • Life Science / Neuroscience-general

Education

  • 東京大学大学院   農学生命科学研究科   応用生命科学専攻 博士課程(農学)

    2013.4 - 2017.3

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Research History

  • Institute of Science Tokyo Specially Appointed Associate Professor

    2024.10

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  • ニューヨーク大学医学部   神経科学部門   博士研究員

    2018.9 - 2024.9

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  • 東京大学大学院 農学生命科学研究科   ERATO東原化学感覚シグナルプロジェクト   特任研究員

    2017.4 - 2018.8

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Professional Memberships

Papers

  • The neural mechanisms supporting the rise and fall of maternal aggression

    Takashi Yamaguchi, Rongzhen Yan, Mashrur Khan, Sota Kuno, Kanishk Tewatia, Takuya Osakada, Srinivas Parthasarathy, Michael E Pacold, Nirao M Shah, Dayu Lin

    Nature   1 - 11   2026.4

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  • A dedicated hypothalamic oxytocin circuit controls aversive social learning. International journal

    Takuya Osakada, Rongzhen Yan, Yiwen Jiang, Dongyu Wei, Rina Tabuchi, Bing Dai, Xiaohan Wang, Gavin Zhao, Clara Xi Wang, Jing-Jing Liu, Richard W Tsien, Adam C Mar, Dayu Lin

    Nature   626 ( 7998 )   347 - 356   2024.1

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    To survive in a complex social group, one needs to know who to approach and, more importantly, who to avoid. In mice, a single defeat causes the losing mouse to stay away from the winner for weeks1. Here through a series of functional manipulation and recording experiments, we identify oxytocin neurons in the retrochiasmatic supraoptic nucleus (SOROXT) and oxytocin-receptor-expressing cells in the anterior subdivision of the ventromedial hypothalamus, ventrolateral part (aVMHvlOXTR) as a key circuit motif for defeat-induced social avoidance. Before defeat, aVMHvlOXTR cells minimally respond to aggressor cues. During defeat, aVMHvlOXTR cells are highly activated and, with the help of an exclusive oxytocin supply from the SOR, potentiate their responses to aggressor cues. After defeat, strong aggressor-induced aVMHvlOXTR cell activation drives the animal to avoid the aggressor and minimizes future defeat. Our study uncovers a neural process that supports rapid social learning caused by defeat and highlights the importance of the brain oxytocin system in social plasticity.

    DOI: 10.1038/s41586-023-06958-w

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  • A tool kit of highly selective and sensitive genetically encoded neuropeptide sensors. International journal

    Huan Wang, Tongrui Qian, Yulin Zhao, Yizhou Zhuo, Chunling Wu, Takuya Osakada, Peng Chen, Zijun Chen, Huixia Ren, Yuqi Yan, Lan Geng, Shengwei Fu, Long Mei, Guochuan Li, Ling Wu, Yiwen Jiang, Weiran Qian, Li Zhang, Wanling Peng, Min Xu, Ji Hu, Man Jiang, Liangyi Chen, Chao Tang, Yingjie Zhu, Dayu Lin, Jiang-Ning Zhou, Yulong Li

    Science (New York, N.Y.)   382 ( 6672 )   eabq8173   2023.11

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    Neuropeptides are key signaling molecules in the endocrine and nervous systems that regulate many critical physiological processes. Understanding the functions of neuropeptides in vivo requires the ability to monitor their dynamics with high specificity, sensitivity, and spatiotemporal resolution. However, this has been hindered by the lack of direct, sensitive, and noninvasive tools. We developed a series of GRAB (G protein-coupled receptor activation‒based) sensors for detecting somatostatin (SST), corticotropin-releasing factor (CRF), cholecystokinin (CCK), neuropeptide Y (NPY), neurotensin (NTS), and vasoactive intestinal peptide (VIP). These fluorescent sensors, which enable detection of specific neuropeptide binding at nanomolar concentrations, establish a robust tool kit for studying the release, function, and regulation of neuropeptides under both physiological and pathophysiological conditions.

    DOI: 10.1126/science.abq8173

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  • Hypothalamic control of innate social behaviors. International journal

    Long Mei, Takuya Osakada, Dayu Lin

    Science (New York, N.Y.), Review   382 ( 6669 )   399 - 404   2023.10

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    Sexual, parental, and aggressive behaviors are central to the reproductive success of individuals and species survival and thus are supported by hardwired neural circuits. The reproductive behavior control column (RBCC), which comprises the medial preoptic nucleus (MPN), the ventrolateral part of the ventromedial hypothalamus (VMHvl), and the ventral premammillary nucleus (PMv), is essential for all social behaviors. The RBCC integrates diverse hormonal and metabolic cues and adjusts an animal's physical activity, hence the chance of social encounters. The RBCC further engages the mesolimbic dopamine system to maintain social interest and reinforces cues and actions that are time-locked with social behaviors. We propose that the RBCC and brainstem form a dual-control system for generating moment-to-moment social actions. This Review summarizes recent progress regarding the identities of RBCC cells and their pathways that drive different aspects of social behaviors.

    DOI: 10.1126/science.adh8489

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  • Neural dynamics in the limbic system during male social behaviors. International journal

    Zhichao Guo, Luping Yin, Veronica Diaz, Bing Dai, Takuya Osakada, Julieta E Lischinsky, Jonathan Chien, Takashi Yamaguchi, Ashley Urtecho, Xiaoyu Tong, Zhe S Chen, Dayu Lin

    Neuron   111 ( 20 )   3288 - 3306   2023.10

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    Sexual and aggressive behaviors are vital for species survival and individual reproductive success. Although many limbic regions have been found relevant to these behaviors, how social cues are represented across regions and how the network activity generates each behavior remains elusive. To answer these questions, we utilize multi-fiber photometry (MFP) to simultaneously record Ca2+ signals of estrogen receptor alpha (Esr1)-expressing cells from 13 limbic regions in male mice during mating and fighting. We find that conspecific sensory information and social action signals are widely distributed in the limbic system and can be decoded from the network activity. Cross-region correlation analysis reveals striking increases in the network functional connectivity during the social action initiation phase, whereas late copulation is accompanied by a "dissociated" network state. Based on the response patterns, we propose a mating-biased network (MBN) and an aggression-biased network (ABN) for mediating male sexual and aggressive behaviors, respectively.

    DOI: 10.1016/j.neuron.2023.07.011

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  • A hypothalamic pathway that suppresses aggression toward superior opponents International journal

    Dongyu Wei, Takuya Osakada, Zhichao Guo, Takashi Yamaguchi, Avni Varshneya, Rongzhen Yan, Yiwen Jiang, Dayu Lin

    Nature Neuroscience   26 ( 5 )   774 - 787   2023.4

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    Language:English   Publishing type:Research paper (scientific journal)   Publisher:Springer Science and Business Media LLC  

    Aggression is costly and requires tight regulation. Here we identify the projection from estrogen receptor alpha-expressing cells in the caudal part of the medial preoptic area (cMPOAEsr1) to the ventrolateral part of the ventromedial hypothalamus (VMHvl) as an essential pathway for modulating aggression in male mice. cMPOAEsr1 cells increase activity mainly during male-male interaction, which differs from the female-biased response pattern of rostral MPOAEsr1 (rMPOAEsr1) cells. Notably, cMPOAEsr1 cell responses to male opponents correlated with the opponents' fighting capability, which mice could estimate based on physical traits or learn through physical combats. Inactivating the cMPOAEsr1-VMHvl pathway increased aggression, whereas activating the pathway suppressed natural intermale aggression. Thus, cMPOAEsr1 is a key population for encoding opponents' fighting capability-information that could be used to prevent animals from engaging in disadvantageous conflicts with superior opponents by suppressing the activity of VMHvl cells essential for attack behaviors.

    DOI: 10.1038/s41593-023-01297-5

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    Other Link: https://www.nature.com/articles/s41593-023-01297-5

  • A genetically encoded sensor measures temporal oxytocin release from different neuronal compartments. International journal

    Tongrui Qian, Huan Wang, Peng Wang, Lan Geng, Long Mei, Takuya Osakada, Lei Wang, Yan Tang, Alan Kania, Valery Grinevich, Ron Stoop, Dayu Lin, Minmin Luo, Yulong Li

    Nature biotechnology   41 ( 7 )   944 - 957   2023.1

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    Oxytocin (OT), a peptide hormone and neuromodulator, is involved in diverse physiological and pathophysiological processes in the central nervous system and the periphery. However, the regulation and functional sequences of spatial OT release in the brain remain poorly understood. We describe a genetically encoded G-protein-coupled receptor activation-based (GRAB) OT sensor called GRABOT1.0. In contrast to previous methods, GRABOT1.0 enables imaging of OT release ex vivo and in vivo with suitable sensitivity, specificity and spatiotemporal resolution. Using this sensor, we visualize stimulation-induced OT release from specific neuronal compartments in mouse brain slices and discover that N-type calcium channels predominantly mediate axonal OT release, whereas L-type calcium channels mediate somatodendritic OT release. We identify differences in the fusion machinery of OT release for axon terminals versus somata and dendrites. Finally, we measure OT dynamics in various brain regions in mice during male courtship behavior. Thus, GRABOT1.0 provides insights into the role of compartmental OT release in physiological and behavioral functions.

    DOI: 10.1038/s41587-022-01561-2

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  • Prelimbic cortex responds to male ultrasonic vocalizations in the presence of a male pheromone in female mice. International journal

    Akari Asaba, Kensaku Nomoto, Takuya Osakada, Tomohiko Matsuo, Ko Kobayakawa, Reiko Kobayakawa, Kazushige Touhara, Kazutaka Mogi, Takefumi Kikusui

    Frontiers in neural circuits   16   956201 - 956201   2022.9

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    Sensory signals are critical to perform adaptive social behavior. During copulation, male mice emit ultrasonic vocalizations (USVs). Our previous studies have shown that female mice exhibit approach behavior toward sound sources of male USVs and that, after being exposed to a male pheromone, exocrine gland-secreting peptide 1 (ESP1), female mice exhibited a preference toward a particular type of male USVs. These findings suggest that male USVs modulate female courtship behavior. However, it remains unclear which brain regions and what cell types of neurons are involved in neuronal processing of male USVs. To clarify this issue, immediate early gene analysis, behavioral analysis, and neurochemical analysis were performed. The in situ hybridization analysis of c-fos mRNA in multiple brain regions showed that neurons in the prelimbic cortex were responsive to presentation of male USVs in the presence of ESP1. Furthermore, this study found that activity of prelimbic cortex was correlated with the duration of female exploration behavior toward a sound source of the USVs. Finally, by using double immunohistochemistry, the present study showed that the prelimbic neurons responding to the presentation of male USVs were presumably excitatory glutamatergic neurons. These results suggest that the prelimbic cortex may facilitate female courtship behavior in response to male USVs.

    DOI: 10.3389/fncir.2022.956201

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  • VMHvllCckar cells dynamically control female sexual behaviors over the reproductive cycle. International journal

    Luping Yin, Koichi Hashikawa, Yoshiko Hashikawa, Takuya Osakada, Julieta E Lischinsky, Veronica Diaz, Dayu Lin

    Neuron   110 ( 18 )   3000 - 3017   2022.9

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    Sexual behavior is fundamental for the survival of mammalian species and thus supported by dedicated neural substrates. The ventrolateral part of ventromedial hypothalamus (VMHvl) is an essential locus for controlling female sexual behaviors, but recent studies revealed the molecular complexity and functional heterogeneity of VMHvl cells. Here, we identify the cholecystokinin A receptor (Cckar)-expressing cells in the lateral VMHvl (VMHvllCckar) as the key controllers of female sexual behaviors. The inactivation of VMHvllCckar cells in female mice diminishes their interest in males and sexual receptivity, whereas activating these cells has the opposite effects. Female sexual behaviors vary drastically over the reproductive cycle. In vivo recordings reveal reproductive-state-dependent changes in VMHvllCckar cell spontaneous activity and responsivity, with the highest activity occurring during estrus. These in vivo response changes coincide with robust alternation in VMHvllCckar cell excitability and synaptic inputs. Altogether, VMHvllCckar cells represent a key neural population dynamically controlling female sexual behaviors over the reproductive cycle.

    DOI: 10.1016/j.neuron.2022.06.026

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  • Responses and functions of dopamine in nucleus accumbens core during social behaviors. International journal

    Bing Dai, Fangmiao Sun, Xiaoyu Tong, Yizhuo Ding, Amy Kuang, Takuya Osakada, Yulong Li, Dayu Lin

    Cell reports   40 ( 8 )   111246 - 111246   2022.8

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    Social behaviors are among the most important motivated behaviors. How dopamine (DA), a "reward" signal, releases during social behaviors has been a topic of interest for decades. Here, we use a genetically encoded DA sensor, GRABDA2m, to record DA activity in the nucleus accumbens (NAc) core during various social behaviors in male and female mice. We find that DA releases during approach, investigation and consummation phases of social behaviors signal animals' motivation, familiarity of the social target, and valence of the experience, respectively. Positive and negative social experiences evoke opposite DA patterns. Furthermore, DA releases during mating and fighting are sexually dimorphic with a higher level in males than in females. At the functional level, increasing DA in NAc enhances social interest toward a familiar conspecific and alleviates defeat-induced social avoidance. Altogether, our results reveal complex information encoded by NAc DA activity during social behaviors and their multistage functional roles.

    DOI: 10.1016/j.celrep.2022.111246

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  • Hemoglobin in the blood acts as a chemosensory signal via the mouse vomeronasal system. International journal

    Takuya Osakada, Takayuki Abe, Takumi Itakura, Hiromi Mori, Kentaro K Ishii, Ryo Eguchi, Ken Murata, Kosuke Saito, Sachiko Haga-Yamanaka, Hiroko Kimoto, Yoshihiro Yoshihara, Kazunari Miyamichi, Kazushige Touhara

    Nature communications   13 ( 1 )   556 - 556   2022.2

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    The vomeronasal system plays an essential role in sensing various environmental chemical cues. Here we show that mice exposed to blood and, consequently, hemoglobin results in the activation of vomeronasal sensory neurons expressing a specific vomeronasal G protein-coupled receptor, Vmn2r88, which is mediated by the interaction site, Gly17, on hemoglobin. The hemoglobin signal reaches the medial amygdala (MeA) in both male and female mice. However, it activates the dorsal part of ventromedial hypothalamus (VMHd) only in lactating female mice. As a result, in lactating mothers, hemoglobin enhances digging and rearing behavior. Manipulation of steroidogenic factor 1 (SF1)-expressing neurons in the VMHd is sufficient to induce the hemoglobin-mediated behaviors. Our results suggest that the oxygen-carrier hemoglobin plays a role as a chemosensory signal, eliciting behavioral responses in mice in a state-dependent fashion.

    DOI: 10.1038/s41467-022-28118-w

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  • Female C57BL/6 and BALB/c mice differently use the acoustic features of male ultrasonic vocalizations for social preferences.

    Kensaku Nomoto, Akiko Hashiguchi, Akari Asaba, Takuya Osakada, Masahiro Kato, Nobuyoshi Koshida, Kazutaka Mogi, Takefumi Kikusui

    Experimental animals   69 ( 3 )   319 - 325   2020.8

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    Male mice emit ultrasonic vocalizations (USVs) in response to the presence of female mice and their urine. Male USVs attract females, enhancing female reproductive functions, and are thus considered as the courtship song. Previous studies have shown that female mice exhibit disassortative social preferences for male USVs. However, it remains unclear what acoustic features female mice use for the development of these preferences. To address this, we examined social preferences of female C57BL/6 and BALB/c mice using the three-chamber preference test using recorded male USVs. To dissociate the peak frequencies of these USVs from their syllable structure, we digitally manipulated the peak frequencies accordingly. We found that female mice preferred USVs that were dissimilar to those of their own strain. We also observed that, while female C57BL/6 mice were sensitive to changes in the syllable structure and the peak frequency, female BALB/c mice were sensitive to differences in the syllable structure. Our results demonstrate that female C57BL/6 and BALB/c mice differently use the acoustic features such as the peak frequency and the syllable structure for exhibiting disassortative social preferences.

    DOI: 10.1538/expanim.19-0119

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  • A sexual rejection peptide: potential use for controlling mouse overpopulation. International journal

    Takuya Osakada, Takumi Itakura, Ryo Kenmochi, Kazushige Touhara

    Bioscience, biotechnology, and biochemistry   83 ( 4 )   705 - 708   2019.4

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    Exocrine gland-secreting peptide 22 (ESP22) is a 10-kDa protein secreted in tears of juvenile mice. ESP22 inhibits sexual behaviors in adults, leading to a reduction in reproduction rate. We herein identified the 24 amino acid sequence within ESP22 that was essential for exhibiting sexual rejection activity. This synthesizable peptide can be useful for controlling mouse overpopulation.

    DOI: 10.1080/09168451.2018.1554427

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  • Hypothalamic Control of Conspecific Self-Defense. International journal

    Li Wang, Vaishali Talwar, Takuya Osakada, Amy Kuang, Zhichao Guo, Takashi Yamaguchi, Dayu Lin

    Cell reports   26 ( 7 )   1747 - 1758   2019.2

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    Active defense against a conspecific aggressor is essential for survival. Previous studies revealed strong c-Fos expression in the ventrolateral part of the ventromedial hypothalamus (VMHvl) in defeated animals. Here, we examined the functional relevance and in vivo responses of the VMHvl during conspecific defense. We found that VMHvl cells expressing estrogen receptor α (Esr1) are acutely excited during active conspecific defense. Optogenetic inhibition of the cells compromised an animal's ability to actively defend against an aggressor, whereas activating the cells elicited defense-like behaviors. Furthermore, the VMHvl is known for its role in aggression. In vivo recording and c-Fos mapping revealed differential organization of the defense and aggression-responsive cells in the VMHvl. Specifically, defense-activated cells are concentrated in the anterior part of the VMHvl, which preferentially targets the periaqueductal gray (PAG). Thus, our study identified an essential neural substrate for active conspecific defense and expanded the function of the VMHvl.

    DOI: 10.1016/j.celrep.2019.01.078

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  • Sexual rejection via a vomeronasal receptor-triggered limbic circuit. International journal

    Takuya Osakada, Kentaro K Ishii, Hiromi Mori, Ryo Eguchi, David M Ferrero, Yoshihiro Yoshihara, Stephen D Liberles, Kazunari Miyamichi, Kazushige Touhara

    Nature communications   9 ( 1 )   4463 - 4463   2018.10

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    Mating drive is balanced by a need to safeguard resources for offspring, yet the neural basis for negative regulation of mating remains poorly understood. In rodents, pheromones critically regulate sexual behavior. Here, we observe suppression of adult female sexual behavior in mice by exocrine gland-secreting peptide 22 (ESP22), a lacrimal protein from juvenile mice. ESP22 activates a dedicated vomeronasal receptor, V2Rp4, and V2Rp4 knockout eliminates ESP22 effects on sexual behavior. Genetic tracing of ESP22-responsive neural circuits reveals a critical limbic system connection that inhibits reproductive behavior. Furthermore, V2Rp4 counteracts a highly related vomeronasal receptor, V2Rp5, that detects the male sex pheromone ESP1. Interestingly, V2Rp4 and V2Rp5 are encoded by adjacent genes, yet couple to distinct circuits and mediate opposing effects on female sexual behavior. Collectively, our study reveals molecular and neural mechanisms underlying pheromone-mediated sexual rejection, and more generally, how inputs are routed through olfactory circuits to evoke specific behaviors.

    DOI: 10.1038/s41467-018-07003-5

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  • Exocrine Gland-Secreting Peptide 1 Is a Key Chemosensory Signal Responsible for the Bruce Effect in Mice. International journal

    Tatsuya Hattori, Takuya Osakada, Takuto Masaoka, Rumi Ooyama, Nao Horio, Kazutaka Mogi, Miho Nagasawa, Sachiko Haga-Yamanaka, Kazushige Touhara, Takefumi Kikusui

    Current biology : CB   27 ( 20 )   3197 - 3201   2017.10

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    The Bruce effect refers to pregnancy termination in recently pregnant female rodents upon exposure to unfamiliar males [1]. This event occurs in specific combinations of laboratory mouse strains via the vomeronasal system [2, 3]; however, the responsible chemosensory signals have not been fully identified. Here we demonstrate that the male pheromone exocrine gland-secreting peptide 1 (ESP1) is one of the key factors that causes pregnancy block. Female mice exhibited high pregnancy failure rates upon encountering males that secreted different levels of ESP1 compared to the mated male. The effect was not observed in mice that lacked the ESP1 receptor, V2Rp5, which is expressed in vomeronasal sensory neurons. Prolactin surges in the blood after mating, which are essential for maintaining luteal function, were suppressed by ESP1 exposure, suggesting that a neuroendocrine mechanism underlies ESP1-mediated pregnancy failure. The single peptide pheromone ESP1 conveys not only maleness to promote female receptivity but also the males' characteristics to facilitate memorization of the mating partner.

    DOI: 10.1016/j.cub.2017.09.013

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  • Male mice ultrasonic vocalizations enhance female sexual approach and hypothalamic kisspeptin neuron activity. International journal

    Akari Asaba, Takuya Osakada, Kazushige Touhara, Masahiro Kato, Kazutaka Mogi, Takefumi Kikusui

    Hormones and behavior   94   53 - 60   2017.8

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    Vocal communication in animals is important for ensuring reproductive success. Male mice emit song-like "ultrasonic vocalizations (USVs)" when they encounter female mice, and females show approach to the USVs. However, it is unclear whether USVs of male mice trigger female behavioral and endocrine responses in reproduction. In this study, we first investigated the relationship between the number of deliveries in breeding pairs for 4months and USVs syllables emitted from those paired males during 3min of sexual encounter with unfamiliar female mice. There was a positive correlation between these two indices, which suggests that breeding pairs in which males could emit USVs more frequently had more offspring. Further, we examined the effect of USVs of male mice on female sexual behavior. Female mice showed more approach behavior towards vocalizing males than devocalized males. Finally, to determine whether USVs of male mice could activate the neural system governing reproductive function in female mice, the activation of kisspeptin neurons, key neurons to drive gonadotropin-releasing hormone neurons in the hypothalamus, was examined using dual-label immunocytochemistry with cAMP response element-binding protein phosphorylation (pCREB). In the arcuate nucleus (Arc), the number of kisspeptin neurons expressing pCREB significantly increased after exposure to USVs of male as compared with noise exposure group. In conclusion, our results suggest that USVs of male mice promote fertility in female mice by activating both their approaching behavior and central kisspeptin neurons.

    DOI: 10.1016/j.yhbeh.2017.06.006

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  • A Labeled-Line Neural Circuit for Pheromone-Mediated Sexual Behaviors in Mice. International journal

    Kentaro K Ishii, Takuya Osakada, Hiromi Mori, Nobuhiko Miyasaka, Yoshihiro Yoshihara, Kazunari Miyamichi, Kazushige Touhara

    Neuron   95 ( 1 )   123 - 137   2017.7

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    In mice, various instinctive behaviors can be triggered by olfactory input. Despite growing knowledge of the brain regions involved in such behaviors, the organization of the neural circuits that convert olfactory input into stereotyped behavioral output remains poorly understood. Here, we mapped the neural circuit responsible for enhancing sexual receptivity of female mice by a male pheromone, exocrine gland-secreting peptide 1 (ESP1). We revealed specific neural types and pathways by which ESP1 information is conveyed from the peripheral receptive organ to the motor-regulating midbrain via the amygdala-hypothalamus axis. In the medial amygdala, a specific type of projection neurons gated ESP1 signals to the ventromedial hypothalamus (VMH) in a sex-dependent manner. In the dorsal VMH, which has been associated with defensive behaviors, a selective neural subpopulation discriminately mediated ESP1 information from a predator cue. Together, our data illuminate a labeled-line organization for controlling pheromone-mediated sexual behavioral output in female mice.

    DOI: 10.1016/j.neuron.2017.05.038

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  • Self-Exposure to the Male Pheromone ESP1 Enhances Male Aggressiveness in Mice. International journal

    Tatsuya Hattori, Takuya Osakada, Ayaka Matsumoto, Naoki Matsuo, Sachiko Haga-Yamanaka, Takaya Nishida, Yuji Mori, Kazutaka Mogi, Kazushige Touhara, Takefumi Kikusui

    Current biology : CB   26 ( 9 )   1229 - 34   2016.5

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    Exocrine gland-secreting peptide 1 (ESP1) released into male tear fluids is a male pheromone that stimulates sexually receptive behavior in female mice via the vomeronasal sensory system. ESP1 also induces c-Fos expression in male brain regions distinct from those in females. However, behavior in males following ESP1 exposure has not been examined. In the present study, we show that ESP1, in conjunction with unfamiliar male urine, enhances male aggression via the specific vomeronasal receptor V2Rp5. In addition, male mice that secrete ESP1 but lack V2Rp5 exhibit a lower level of aggressiveness than do mice that express V2Rp5. These results suggest that ESP1 not only acts as a male pheromone in both sexes but also serves as an auto-stimulatory factor that enhances male aggressiveness by self-exposure. Finally, re-activation of ESP1-induced c-Fos-positive neurons by using the designer receptor exclusively activated by designer drug (DREADD) approach resulted in enhancement of sexual and aggressive behaviors in female and male mice, respectively, indicating that sexually dimorphic activation in the brain is a neural basis for the sex-specific behavioral responses to ESP1.

    DOI: 10.1016/j.cub.2016.03.029

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  • Developmental social environment imprints female preference for male song in mice. International journal

    Akari Asaba, Shota Okabe, Miho Nagasawa, Masahiro Kato, Nobuyoshi Koshida, Takuya Osakada, Kazutaka Mogi, Takefumi Kikusui

    PloS one   9 ( 2 )   e87186   2014.2

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    BACKGROUND: Sexual imprinting is important for kin recognition and for promoting outbreeding, and has been a driving force for evolution; however, little is known about sexual imprinting by auditory cues in mammals. Male mice emit song-like ultrasonic vocalizations that possess strain-specific characteristics. OBJECTIVES: In this study, we asked whether female mice imprint and prefer specific characteristics in male songs. METHODS AND FINDINGS: We used the two-choice test to determine the song preference of female C57BL/6 and BALB/c mice. By assessing the time engaged in searching behavior towards songs played back to females, we found that female mice displayed an innate preference for the songs of males from different strains. Moreover, this song preference was regulated by female reproductive status and by male sexual cues such as the pheromone ESP1. Finally, we revealed that this preference was reversed by cross-fostering and disappeared under fatherless conditions, indicating that the behavior was learned by exposure to the father's song. CONCLUSIONS: Our results suggest that female mice can discriminate among male song characteristics and prefer songs of mice from strains that are different from their parents, and that these preferences are based on their early social experiences. This is the first study in mammals to demonstrate that male songs contribute to kin recognition and mate choice by females, thus helping to avoid inbreeding and to facilitate offspring heterozygosity.

    DOI: 10.1371/journal.pone.0087186

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  • A juvenile mouse pheromone inhibits sexual behaviour through the vomeronasal system. International journal

    David M Ferrero, Lisa M Moeller, Takuya Osakada, Nao Horio, Qian Li, Dheeraj S Roy, Annika Cichy, Marc Spehr, Kazushige Touhara, Stephen D Liberles

    Nature   502 ( 7471 )   368 - 71   2013.10

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    Animals display a repertoire of different social behaviours. Appropriate behavioural responses depend on sensory input received during social interactions. In mice, social behaviour is driven by pheromones, chemical signals that encode information related to age, sex and physiological state. However, although mice show different social behaviours towards adults, juveniles and neonates, sensory cues that enable specific recognition of juvenile mice are unknown. Here we describe a juvenile pheromone produced by young mice before puberty, termed exocrine-gland secreting peptide 22 (ESP22). ESP22 is secreted from the lacrimal gland and released into tears of 2- to 3-week-old mice. Upon detection, ESP22 activates high-affinity sensory neurons in the vomeronasal organ, and downstream limbic neurons in the medial amygdala. Recombinant ESP22, painted on mice, exerts a powerful inhibitory effect on adult male mating behaviour, which is abolished in knockout mice lacking TRPC2, a key signalling component of the vomeronasal organ. Furthermore, knockout of TRPC2 or loss of ESP22 production results in increased sexual behaviour of adult males towards juveniles, and sexual responses towards ESP22-deficient juveniles are suppressed by ESP22 painting. Thus, we describe a pheromone of sexually immature mice that controls an innate social behaviour, a response pathway through the accessory olfactory system and a new role for vomeronasal organ signalling in inhibiting sexual behaviour towards young. These findings provide a molecular framework for understanding how a sensory system can regulate behaviour.

    DOI: 10.1038/nature12579

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  • Experience-dependent plasticity of social behaviors controlled by circuits in the hypothalamus Invited

    NEURO2026  2026.8 

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  • A hypothalamic oxytocin circuit acts as a behavioral switch between approach and avoidance Invited

    Takuya Osakada

    The 46th Annual Meeting of the Molecular Biology Society of Japan  2023.12 

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  • A hypothalamic oxytocin circuit acts as a switch from approach to social avoidance Invited

    Takuya Osakada

    Special Seminar in Summer at University of California Riverside  2023.8 

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  • A dedicated hypothalamic oxytocin circuit controls social avoidance learning Invited

    Takuya Osakada, Dayu Lin

    15th Göttingen Meeting of the German Neuroscience Society  2023.3 

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  • Private oxytocin supply and its receptors in the hypothalamus for social avoidance learning Invited

    Takuya Osakada

    Open Box Science  2023.1 

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  • 適切な社会性行動を導く脳視床下部制御機構のマウスにおける解析 Invited

    小坂田拓哉

    岡山大学大学院 環境生命自然科学研究科 第476回 生物科学セミナー  2024.12 

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  • 社会性行動を制御する神経回路基盤のマウスにおける解析 Invited

    小坂田拓哉

    第97回 日本生化学会大会  2024.11 

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  • An essential neuropeptide in the hypothalamus controls social avoidance learning in mice Invited

    Takuya Osakada

    Tohoku Forum for Creativity ‘Social Memory: Neural Basis of Communication, Part 1' at Tohoku University  2024.9 

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  • Hypothalamic oxytocin signaling to elicit social avoidance

    Takuya Osakada

    NEURO 2024  2024.7 

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  • Essential oxytocin signaling in the hypothalamus for social avoidance learning in mice Invited

    Takuya Osakada

    Seminar at Medical University of South Carolina  2024.5 

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  • Oxytocinergic modulation in the hypothalamus for social avoidance learning in mice Invited

    Takuya Osakada

    Tokyo Institute of Technology  2024.3 

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  • マウス社会性行動を制御する視床下部を中心とした神経回路基盤の解析 Invited

    小坂田拓哉

    第12回FUJITA ICBSセミナー, 第8回これからの神経回路研究の会  2026.2 

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  • Indispensable ligands and neural circuits control social behaviors in mice Invited

    Takuya Osakada

    Tsukuba Conference 2025  2025.10 

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  • Neuropeptides-dependent circuits in the hypothalamus underlie social behaviors in mice Invited

    Takuya Osakada

    235th WPI-IIIS Seminar  2025.9 

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  • Essential oxytocinergic modulation in the hypothalamus for social avoidance learning Invited

    Takuya Osakada

    Research Unit “Peripheral-Central Interaction in Stress” The 2nd international symposium  2025.3 

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  • 脳視床下部から分泌されるオキシトシンペプチドを介した逃避行動制御メカニズムの同定 Invited

    小坂田拓哉

    IC2NEMO  2025.1 

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  • Specific Receptors, Circuits, and Outputs for Vomeronasal Ligands Invited

    Takuya Osakada, Kazushige Touhara

    Pre-meeting symposium in Association for Chemoreception Sciences 2019  2019.4 

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  • オキシトシンニューロンの新たな機能概念と本能行動制御メカニズム Invited

    小坂田拓哉

    第40回 日本下垂体研究会学術集会  2026.8 

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Awards

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Research Projects

  • Understanding the basis and the structure of copresence in developmental context

    Grant number:26H00366  2026.4 - 2031.3

    Japan Society for the Promotion of Science  Grants-in-Aid for Scientific Research  Grant-in-Aid for Transformative Research Areas (A)

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    Grant amount:\193310000 ( Direct Cost: \148700000 、 Indirect Cost:\44610000 )

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  • 脳視床下部が紡ぐストレス社会に重要な摂食調節機構の解析

    2026.4 - 2029.3

    公益財団法人 ロッテ財団 第12回研究助成

    小坂田拓哉

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  • 社会的ストレスへの適切な応答を導出する回路基盤の同定

    2026.4 - 2028.3

    公益財団法人 稲盛財団 2026年度稲盛研究助成 はぐくむコース

    小坂田拓哉

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  • 社会的ストレスによるうつ症状を未然に防ぐための回路基盤の解析

    2026.4 - 2027.3

    公益財団法人 中外創薬科学財団  令和7年度 研究助成金II 

    小坂田拓哉

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  • 社会性行動の適切な出力を導く脳内制御基盤の解析

    2026.2 - 2028.3

    公益財団法人 千里ライフサイエンス振興財団  2025年度 岸本基金研究助成 

    小坂田拓哉

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  • Identification of various signal transduction in the hypothalamus

    2025.11 - 2026.10

    Takuya Osakada

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  • 成長過程依存的に確立される社会性を制御する回路基盤の同定

    2025.10 - 2026.9

    公益財団法人 三菱財団  2025年度 自然科学研究助成(若手) 

    小坂田拓哉

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  • Understanding behavioral and physical response towards social stress

    2025.10 - 2026.3

    AMED and NYAS  The 2025-2026 Interstellar Initiative 

    Takuya Osakada

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  • 子が示す母への愛着の脳内基盤を解き明かす

    2025.9 - 2030.3

    公益財団法人 武田科学振興財団  2025年度ビジョナリーリサーチ助成(スタート) 

    小坂田拓哉

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  • 視索上核が様々な外界刺激・個体内変化に応答するメカニズムの同定

    2025.7 - 2026.6

    公益信託 成茂神経科学研究助成  令和7年度研究助成 

    Takuya Osakada

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  • オキシトシンが怒りを可塑的に制御する基盤

    2025.6 - 2026.5

    公益財団法人 ブレインサイエンス振興財団  第39回研究助成 

    Takuya Osakada

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  • 社会的敗北と渇水に応答する際の視床下部バソプレシンを介した情報伝達経路の理解

    2025.4 - 2028.3

    日本学術振興会  科学研究費助成事業 基盤研究C 

    Takuya Osakada

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  • 視床下部のバソプレシン神経細胞がもつ多様な情報伝達経路の解明

    2025.4 - 2026.3

    一般社団法人 同仁化学学術振興財団  2025年度 同仁化学学術振興財団研究助成 

    Takuya Osakada

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  • 社会的敗北時に分泌されるオキシトシンによって可塑的に攻撃が抑制される神経回路の同定

    2025.2 - 2026.12

    公益財団法人 第一三共生命科学研究振興財団  2024年度研究助成 

    小坂田拓哉

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  • Identification of essential oxytocinergic neural circuitry in PTSD

    2024.1 - 2026.1

    Brain and Behavior Research Foundation 

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    Authorship:Principal investigator 

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  • 光科学技術によってペプチド分泌を可視化するセンサーを用いた摂食行動下の神経ペプチドの機能解明

    2024.1 - 2025.12

    公益財団法人 光科学技術研究振興財団  令和5年度 研究助成 

    小坂田拓哉

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  • 摂食における視床下部神経ペプチドの重要性と神経性無食欲症における回路異常の検証

    2023.11 - 2024.10

    公益財団法人 住友財団  2023年度 基礎科学研究助成 

    小坂田拓哉

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  • 摂食を制御する視床下部のバソプレシンペプチドを介した神経回路基盤の解析

    2023.7 - 2024.6

    公益財団法人 三島海雲記念財団  2023年度 学術研究奨励金 自然科学部門 

    小坂田拓哉

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  • 「心地よさ」を感じる際に重要な神経回路ならびに分泌されるホルモンの同定

    2023.4

    株式会社リバネス  第59回 リバネス研究費 Delightex賞 

    小坂田拓哉

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    Authorship:Principal investigator 

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  • 神経疾患に起因する過剰な攻撃行動の神経回路基盤の解析

    2022.10 - 2023.9

    公益財団法人 金原一郎医学医療振興財団  第37回 基礎医学医療研究助成金 

    小坂田拓哉

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    Authorship:Principal investigator 

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  • 攻撃行動中枢への抑制性入力機構の解析

    2022.2 - 2023.1

    公益社団法人 日本生化学会  2021年度 早石修記念海外留学助成 

    小坂田拓哉

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  • 精神疾患時に過剰な攻撃行動が生じる神経回路機構のマウスを用いた解析

    2019.9 - 2022.1

    日本学術振興会  平成31年度 海外特別研究員 

    小坂田拓哉

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  • 攻撃行動を制御する神経回路機構のマウスにおける解析

    2018.9 - 2019.8

    上原記念生命科学財団  平成29年度 海外留学助成金ポストドクトラルフェローシップ 

    小坂田拓哉

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  • マウスのフェロモンESPが性行動を制御する際に機能する脳神経回路の解析

    Grant number:15J11066  2015.4 - 2017.3

    日本学術振興会  科学研究費助成事業 特別研究員奨励費  特別研究員奨励費

    小坂田 拓哉

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    Grant amount:\1900000 ( Direct Cost: \1900000 )

    本研究によって、幼少フェロモンESP22が雌マウスに受容された際の行動出力とそこに至るまでの情報制御機構を明らかにすることに成功した。生後2-3週令の幼少マウスの涙液中に分泌される約10 kDaのペプチドESP22は、単一の鋤鼻受容体V2Rp4で受容される。そして、母親マウスと交尾未経験雌マウスに対して異なった行動出力をもたらす。その中で、交尾未経験雌マウスに対しては、雄マウスがマウント行動を仕掛けた際に、そのマウント行動を拒否する行動を促進することが明らかになった。その際に、ESP22はまずV2Rp4を発現する鋤鼻神経細胞で受容され、副嗅球へとその情報が伝達された後、MeAならびにBNSTへと伝達されていくことが示された。BNSTに分布する神経細胞の大半は抑制性の細胞であること、また、VMHvlがBNSTの神経細胞の軸索の主要な投射先であることが、並行する研究で明らかにされた。これらを合わせて考えると、ESP22が交尾未経験雌マウスに受容されると、情報がBNSTへと伝達され、BNSTの神経細胞がVMHvlの活動を抑制することで、拒否行動が促進されると考察される。
    幼少フェロモンESP22は母親マウスを近くに留まらせ、それ以外の雌マウスの性行動を抑制する。自然界において、野ネズミは雌個体がなわばりを形成し、周囲の雌個体によるなわばりへの侵入が観察される。この際に、性的モチベーションが高い個体ほど、攻撃性が高い。また、雌マウスは妊娠に成功すると、攻撃性が高くなることが知られている。ESP22が雌マウスの性行動を抑制することによって、攻撃性の高い個体が幼少マウスの周囲に存在する状況を未然に防いでいる可能性が考えられる。また、ESP22が母親マウスを近くに留まらせることにより、幼少マウスは母親マウスの近くに長い期間生息することができ、被食率を低く保てるとも考察される。

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Teaching Experience

  • 特別研究プロジェクト

    2024.12 - 2026.1 Institution:東京科学大学生命理工学院

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  • 生命理工学基礎実験

    2024.12 - 2025.1 Institution:東京科学大学生命理工学院

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  • ウェルネス理解のための細胞生物学

    2023.12 - 2025.12 Institution:立教大学スポーツウェルネス学部

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  • ウェルネス理解のための基礎生命科学

    2023.6 - 2025.6 Institution:立教大学スポーツウェルネス学部

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