Curriculum Vitaes

Takashi Nakano

  (中野 高志)

Profile Information

Affiliation
Associate Professor, School of Medicine, Fujita Health University
(Concurrent)vice-director, Office for Medical ICT Planning and Promotion
Degree
Ph.D.(NAIST)

J-GLOBAL ID
201001070039507320
Researcher ID
B-6061-2015
researchmap Member ID
6000022342

External link

強化学習の神経機構について、コンピュータ上で脳をつくることで理解しようと取り組んでいます。特に神経生物学実験の経験を生かして生物学的に妥当な詳細なモデルを構築することで、強化学習がどのようにして脳で実装されているのかを研究しています。また、様々な研究機関と共同研究を行い脳神経活動などのデータをデータサイエンスの手法を用いて解析をすることで、脳や精神疾患の理解を目指しています。


Papers

 22
  • Wan-Ru Li, Takashi Nakano, Kohta Mizutani, Takanori Matsubara, Masahiro Kawatani, Yasutaka Mukai, Teruko Danjo, Hikaru Ito, Hidenori Aizawa, Akihiro Yamanaka, Carl C.H. Petersen, Junichiro Yoshimoto, Takayuki Yamashita
    Current Biology, Aug, 2023  Peer-reviewedLead author
  • Takanori Matsubara, Takayuki Yanagida, Noriaki Kawaguchi, Takashi Nakano, Junichiro Yoshimoto, Maiko Sezaki, Hitoshi Takizawa, Satoshi P. Tsunoda, Shin ichiro Horigane, Shuhei Ueda, Sayaka Takemoto-Kimura, Hideki Kandori, Akihiro Yamanaka, Takayuki Yamashita
    Nature Communications, 13(1), Dec, 2022  
    The original version of this Article contained an error in Figure 3d. The label ‘ChRmine-eYFP’ was incorrectly shown in orange font instead of green font. This error has been corrected in the HTML and PDF versions of the Article.
  • Takashi Nakano, Masahiro Takamura, Takahiro A. Kato, Shin-ichi Kano
    Frontiers in Psychiatry, 13, Dec 1, 2022  Lead authorCorresponding author
  • Yukie Yamahashi, You-Hsin Lin, Akihiro Mouri, Sho Iwanaga, Kazuhiro Kawashima, Yuya Tokumoto, Yo Watanabe, Md Omar Faruk, Xinjian Zhang, Daisuke Tsuboi, Takashi Nakano, Naoaki Saito, Taku Nagai, Kiyofumi Yamada, Kozo Kaibuchi
    Molecular psychiatry, 27(8) 3479-3492, Jun 3, 2022  Peer-reviewed
    Acetylcholine is a neuromodulator critical for learning and memory. The cholinesterase inhibitor donepezil increases brain acetylcholine levels and improves Alzheimer's disease (AD)-associated learning disabilities. Acetylcholine activates striatal/nucleus accumbens dopamine receptor D2-expressing medium spiny neurons (D2R-MSNs), which regulate aversive learning through muscarinic receptor M1 (M1R). However, how acetylcholine stimulates learning beyond M1Rs remains unresolved. Here, we found that acetylcholine stimulated protein kinase C (PKC) in mouse striatal/nucleus accumbens. Our original kinase-oriented phosphoproteomic analysis revealed 116 PKC substrate candidates, including Rac1 activator β-PIX. Acetylcholine induced β-PIX phosphorylation and activation, thereby stimulating Rac1 effector p21-activated kinase (PAK). Aversive stimulus activated the M1R-PKC-PAK pathway in mouse D2R-MSNs. D2R-MSN-specific expression of PAK mutants by the Cre-Flex system regulated dendritic spine structural plasticity and aversive learning. Donepezil induced PAK activation in both accumbal D2R-MSNs and in the CA1 region of the hippocampus and enhanced D2R-MSN-mediated aversive learning. These findings demonstrate that acetylcholine stimulates M1R-PKC-β-PIX-Rac1-PAK signaling in D2R-MSNs for aversive learning and imply the cascade's therapeutic potential for AD as aversive learning is used to preliminarily screen AD drugs.
  • Takashi Nakano, Shakila B. Rizwan, David M. A. Myint, Jason Gray, Sean M. Mackay, Paul Harris, Christopher G. Perk, Brian I. Hyland, Ruth Empson, Eng Wui Tan, Keshav M. Dani, John NJ Reynolds, Jeffery R. Wickens
    Pharmaceutics, 14(2) 468-468, Feb 21, 2022  Peer-reviewedLead author
    Drug delivery systems have the potential to deliver high concentrations of drug to target areas on demand, while elsewhere and at other times encapsulating the drug, to limit unwanted actions. Here we show proof of concept in vivo and ex vivo tests of a novel drug delivery system based on hollow-gold nanoparticles tethered to liposomes (HGN-liposomes), which become transiently permeable when activated by optical or acoustic stimulation. We show that laser or ultrasound simulation of HGN-liposomes loaded with the GABAA receptor agonist, muscimol, triggers rapid and repeatable release in a sufficient concentration to inhibit neurons and suppress seizure activity. In particular, laser-stimulated release of muscimol from previously injected HGN-liposomes caused subsecond hyperpolarizations of the membrane potential of hippocampal pyramidal neurons, measured by whole cell intracellular recordings with patch electrodes. In hippocampal slices and hippocampal–entorhinal cortical wedges, seizure activity was immediately suppressed by muscimol release from HGN-liposomes triggered by laser or ultrasound pulses. After intravenous injection of HGN-liposomes in whole anesthetized rats, ultrasound stimulation applied to the brain through the dura attenuated the seizure activity induced by pentylenetetrazol. Ultrasound alone, or HGN-liposomes without ultrasound stimulation, had no effect. Intracerebrally-injected HGN-liposomes containing kainic acid retained their contents for at least one week, without damage to surrounding tissue. Thus, we demonstrate the feasibility of precise temporal control over exposure of neurons to the drug, potentially enabling therapeutic effects without continuous exposure. For future application, studies on the pharmacokinetics, pharmacodynamics, and toxicity of HGN-liposomes and their constituents, together with improved methods of targeting, are needed, to determine the utility and safety of the technology in humans.

Misc.

 10
  • 中野高志, 中野高志, 高村真広, 西村春輝, 町澤まろ, 市川奈穂, 吉野敦雄, 岡田剛, 岡本泰昌, 岡本泰昌, 山脇成人, 山田真希子, 須原哲也, 吉本潤一郎
    日本神経化学会大会抄録集(Web), 65th, 2022  
  • 高村真広, 高村真広, 中野高志, 中野高志, 西村春輝, 西村春輝, 町澤まろ, 市川奈穂, 吉野敦雄, 吉野敦雄, 岡田剛, 岡本泰昌, 岡本泰昌, 山脇成人, 山田真希子, 山田真希子, 須原哲也, 吉本潤一郎, 吉本潤一郎
    日本神経化学会大会抄録集(Web), 65th, 2022  
  • 中野高志, 中野高志, 高村真広, 西村春輝, 町澤まろ, 市川奈穂, 岡本泰昌, 山脇成人, 山田真希子, 須原哲也, 吉本潤一郎, 吉本潤一郎
    人工知能学会全国大会(Web), 36th, 2022  
  • 松原崇紀, 柳田健之, 河口範明, 中野高志, 瀬崎真衣子, 滝澤仁, 山中章弘, 山下貴之, 山下貴之
    日本生理学雑誌(Web), 83(2), 2021  
  • 酒井翠, 高村真広, 岡田剛, 岡本泰昌, 山脇成人, 丸野由希, 中野高志, 吉本潤一郎
    電子情報通信学会技術研究報告, 118(322(NC2018 22-27)(Web)) 1 (WEB ONLY), Nov 15, 2018  
  • 酒井翠, 中野高志, 丸野由希, 岡田剛, 高村真広, 岡本泰昌, 山脇成人, 吉本潤一郎
    情報処理学会関西支部支部大会講演論文集(CD-ROM), 2018 3p, 2018  
  • Takashi Nakano, Catherine Chin, David Mo Aung Myint, Eng Wui Tan, Peter John Hale, John N. J. Reynolds, Jeff Wickens, Keshav M. Dani
    2014 CONFERENCE ON LASERS AND ELECTRO-OPTICS (CLEO), 2014  
    The development of fast and robust chemical delivery systems is important step for nanomedicine. We demonstrate on-demand, sub-second, controlled release of a neuromodulator by applying femtosecond laser pulse trains to robust, liposome structures.
  • IEICE technical report, 109(53) 103-110, May 25, 2009  
  • Takashi Nakano, Junichiro Yoshimoto, Jeff Wickens, Kenji Doya
    IPSJ SIG technical reports, 2009(16) 1-8, May 18, 2009  
    The striatum, the input nucleus of the basal ganglia, receives glutamate input from the cortex and dopamine input from the substantia nigra. Recently, several studies reported contradictory results on the dependence of the striatal synaptic plasticity on the timing of cortical input, dopamine input, and the spike output. To clarify the mechanisms behind spike timing-dependent plasticity of striatal synapses, we investigated the spike timing-dependence of intracellular calcium concentration by constructing a striatal neuron model with a realistic morphology. Our simulation predicted that the calcium transient is maximal when cortical spike input and dopamine input preceded the postsynaptic spike. The gain of the calcium transient is enhanced during the "up-state" of striatal cells.
  • NAKANO TAKASHI, DOI TOMOKAZU, YOSHIMOTO JUNICHIRO, DOYA KENJI
    IPSJ SIG technical reports, 2007(60) 55-62, Jun 14, 2007  
    The plasticity of cortico-striatal synapses is regulated by dopamine, glutamate and post-synaptic activation. We built an intracellular signaling cascade model in order to examine the dynamic mechanisms of cortico-striatal synaptic plasticity. According to our simulation results, bidirectional synaptic plasticity was reproduced well and molecular mechanisms of striatal synaptic plasticity was clarified. We conclude that PKA and DARPP-32 are essen tial for Ca-and DA-dependent cortico-striatal synaptic plasticity. Especially, the activation of CK1-Cdk5-D75 pathway is important for Ca-dependent LTD and the activation of PP2A-D75 pathway is important for Ca-dependent LTP.

Books and Other Publications

 2

Teaching Experience

 12

Research Projects

 5

Other

 1
  • ① レーザーとリポソームを用いた薬物投与法 *本研究シーズに関する産学共同研究の問い合わせは藤田医科大学産学連携推進センター(fuji-san@fujita-hu.ac.jp)まで