MEK/ERK Signaling Regulates Reconstitution of the Dopaminergic Nerve Circuit in the Planarian Dugesia japonica

被引:0
|
作者
Masanori Hijioka
Yusuke Ikemoto
Kosuke Fukao
Takeshi Inoue
Tatsuki Kobayakawa
Kaneyasu Nishimura
Kazuyuki Takata
Kiyokazu Agata
Yoshihisa Kitamura
机构
[1] Ritsumeikan University,Laboratory of Pharmacology and Neurobiology, College of Pharmaceutical Sciences
[2] Nagoya City University Graduate School of Medical Sciences,Department of Neurocognitive Science, Institute of Brain Science
[3] Gakushuin University,Department of Life Science, Faculty of Science
[4] Tottori University,Division of Adaptation Physiology, Faculty of Medicine
[5] Kyoto Pharmaceutical University,Division of Integrated Pharmaceutical Sciences
[6] National Institutes of Natural Science,National Institute for Basic Biology
来源
Neurochemical Research | 2022年 / 47卷
关键词
Dopaminergic neuron; Regeneration; Mitogen-activated protein kinase; Neoblast;
D O I
暂无
中图分类号
学科分类号
摘要
Planarian Dugesia japonica is a flatworm that can autonomously regenerate its own body after an artificial amputation. A recent report showed the role of the mitogen-activated protein kinase/extracellular signal-regulated kinase (MEK/ERK) pathway in the head morphogenesis during the planarian regeneration process after amputation; however, neuron-specific regeneration mechanisms have not yet been reported. Here, whether MEK/ERK pathway was involved in the dopaminergic neuronal regeneration in planarians was investigated. Planarians regenerated their body within 14 days after amputation; however, the head region morphogenesis was inhibited by MEK inhibitor U0126 (3 or 10 μM). Furthermore, the number of planarian tyrosine hydroxylase (DjTH)-positive dopaminergic neurons in the regenerated head region was also decreased by U0126. The 6-hydroxydopamine (6-OHDA), a dopaminergic neurotoxin, can decrease the number of dopaminergic neurons; however, planarians can regenerate dopaminergic neurons after injecting 6-OHDA into the intestinal tract. MEK inhibitor PD98059 (30 μM) or U0126 (10 μM) significantly decreased dopaminergic neurons 5 days after the 6-OHDA injection. During the regeneration process of dopaminergic neurons, phosphorylated histone H3 (H3P)-positive stem cells known as “neoblasts” were increased in the head region; however, MEK inhibitors significantly decreased the number of H3P-positive neoblasts. These results suggested that dopaminergic neuronal regeneration in planarian was regulated by the MEK/ERK pathway.
引用
收藏
页码:2558 / 2567
页数:9
相关论文
共 50 条
  • [31] MEK/ERK Signaling in β-Cells Bifunctionally Regulates β-Cell Mass and Glucose-Stimulated Insulin Secretion Response to Maintain Glucose Homeostasis
    Ikushima, Yoshiko Matsumoto
    Awazawa, Motoharu
    Kobayashi, Naoki
    Osonoi, Sho
    Takemiya, Seiichi
    Kobayashi, Hiroshi
    Suwanai, Hirotsugu
    Morimoto, Yuichi
    Soeda, Kotaro
    Adachi, Jun
    Muratani, Masafumi
    Charron, Jean
    Mizukami, Hiroki
    Takahashi, Noriko
    Ueki, Kohjiro
    [J]. DIABETES, 2021, 70 (07) : 1519 - 1535
  • [32] DISC1 regulates astrogenesis in the embryonic brain via modulation of RAS/MEK/ERK signaling through RASSF7
    Wang, Shukun
    Liang, Qingli
    Qiao, Huimin
    Li, Hong
    Shen, Tianjin
    Ji, Fen
    Jiao, Jianwei
    [J]. DEVELOPMENT, 2016, 143 (15): : 2732 - 2740
  • [33] PI3K regulates MEK/ERK signaling in breast cancer via the Rac-GEF, P-Rex1
    Ebi, Hiromichi
    Costa, Carlotta
    Faber, Anthony C.
    Nishtala, Madhuri
    Kotani, Hiroshi
    Juric, Dejan
    Della Pelle, Patricia
    Song, Youngchul
    Yano, Seiji
    Mino-Kenudson, Mari
    Benes, Cyril H.
    Engelman, Jeffrey A.
    [J]. PROCEEDINGS OF THE NATIONAL ACADEMY OF SCIENCES OF THE UNITED STATES OF AMERICA, 2013, 110 (52) : 21124 - 21129
  • [34] Oncostatin M-induced cardiomyocyte dedifferentiation regulates the progression of diabetic cardiomyopathy through B-Raf/Mek/Erk signaling pathway
    Zhang, Xiaotian
    Ma, Sai
    Zhang, Ran
    Li, Shuang
    Zhu, Di
    Han, Dong
    Li, Xiujuan
    Li, Congye
    Yan, Wei
    Sun, Dongdong
    Xu, Bin
    Wang, Yabin
    Cao, Feng
    [J]. ACTA BIOCHIMICA ET BIOPHYSICA SINICA, 2016, 48 (03) : 257 - 265
  • [35] PI3K regulates MEK/ERK signaling in breast cancer via the Rac-GEF, P-Rex1.
    Ebi, Hiromichi
    Costa, Carlotta
    Faber, Anthony
    Juric, Dejan
    Della Pelle, Patricia
    Song, Youngchui
    Yano, Seiji
    Mino-Kenudson, Mad
    Benes, Cyril H.
    Engelman, Jeffrey A.
    [J]. MOLECULAR CANCER THERAPEUTICS, 2013, 12 (11)
  • [36] Involvement of MEK5/ERK5 signaling pathway in manganese-induced cell injury in dopaminergic MN9D cells
    Ding, Hongwei
    Wang, Feng
    Su, Liyu
    Zhao, Lan
    Hu, Binli
    Zheng, Wei
    Yao, Shengtao
    Li, Yan
    [J]. JOURNAL OF TRACE ELEMENTS IN MEDICINE AND BIOLOGY, 2020, 61
  • [37] Retinoic acid receptor stimulation activates NO/cyclic GMP-dependent MEK/ERK signaling pathway leading to upregulation of BDNF expression in midbrain dopaminergic neurons
    Kurauche, Yuki
    Hisatsune, Akinori
    Isohama, Yoichiro
    Sawa, Tomohiro
    Akaike, Takaaki
    Shudo, Koichi
    Katsuki, Hiroshi
    [J]. NITRIC OXIDE-BIOLOGY AND CHEMISTRY, 2010, 22 : S54 - S54
  • [38] Ras-MEK-ERK signaling cascade regulates androgen receptor element-inducible gene transcription and DNA synthesis in prostate cancer cells
    Carey, Anne-Marie
    Pramanik, Rashida
    Nicholson, Linda J.
    Dew, Tracy K.
    Martin, Francis L.
    Muir, Gordon H.
    Morris, Jonathan D. H.
    [J]. INTERNATIONAL JOURNAL OF CANCER, 2007, 121 (03) : 520 - 527
  • [39] Quercetin-targeted AKT1 regulates the Raf/MEK/ERK signaling pathway to protect against doxorubicin-induced nephropathy in mice
    Wang, Yufang
    Liu, Mingfang
    Huang, Nan
    Wang, Tingting
    [J]. TISSUE & CELL, 2023, 85
  • [40] TRAF3IP3 at the trans-Golgi network regulates NKT2 maturation via the MEK/ERK signaling pathway
    Xinwei Zhang
    Ke Wang
    Weijia Zhao
    Li Cao
    Shusong Zhang
    Rong Jin
    Xiuyuan Sun
    Jie Hao
    Xiaojun Huang
    Mingzhao Zhu
    Hounan Wu
    Hongshan Zhao
    Qing Ge
    [J]. Cellular & Molecular Immunology, 2020, 17 : 395 - 406