CD38 positively regulates postnatal development of astrocytes cell-autonomously and oligodendrocytes non-cell-autonomously

被引:47
|
作者
Hattori, Tsuyoshi [1 ]
Kaji, Minoru [1 ]
Ishii, Hiroshi [1 ]
Jureepon, Roboon [1 ]
Takarada-Iemata, Mika [1 ]
Hieu Minh Ta [1 ]
Thuong Manh Le [1 ]
Konno, Ayumu [2 ]
Hirai, Hirokazu [2 ]
Shiraishi, Yoshitake [3 ]
Ozaki, Noriyuki [3 ]
Yamamoto, Yasuhiko [4 ]
Okamoto, Hiroshi [4 ,5 ]
Yokoyama, Shigeru [6 ]
Higashida, Haruhiro [6 ]
Kitao, Yasuko [1 ]
Hori, Osamu [1 ]
机构
[1] Kanazawa Univ, Grad Sch Med Sci, Dept Neuroanat, 13-1 Takara Machi, Kanazawa, Ishikawa 9208640, Japan
[2] Gunma Univ, Dept Neurophysiol & Neural Repair, Grad Sch Med, Maebashi, Gunma, Japan
[3] Kanazawa Univ, Grad Sch Med Sci, Dept Funct Anat, Kanazawa, Ishikawa, Japan
[4] Kanazawa Univ, Grad Sch Med Sci, Dept Biochem & Mol Vasc Biol, Kanazawa, Ishikawa, Japan
[5] Tohoku Univ, Grad Sch Med, Dept Biochem, Sendai, Miyagi, Japan
[6] Kanazawa Univ, Dept Basic Res Social Recognit & Memory, Res Ctr Child Mental Dev, Kanazawa, Ishikawa, Japan
关键词
autism; connexin; 43; cortex; hemichannel; myelin; NAD; CYCLIC-ADP-RIBOSE; OXYTOCIN; BRAIN; CONNEXIN-43; NAD(+); MYELINATION; DELETION; PROTEIN; AUTISM; GLIA;
D O I
10.1002/glia.23139
中图分类号
Q189 [神经科学];
学科分类号
071006 ;
摘要
Glial development is critical for the function of the central nervous system. CD38 is a multifunctional molecule with ADP-ribosyl cyclase activity. While critical roles of CD38 in the adult brain such as oxytocin release and social behavior have been reported, those in the developing brain remain largely unknown. Here we demonstrate that deletion of Cd38 leads to impaired development of astrocytes and oligodendrocytes in mice. CD38 is highly expressed in the developing brains between postnatal day 14 (P14) and day 28 (P28). In situ hybridization and FACS analysis revealed that CD38 is expressed predominantly in astrocytes in these periods. Analyses of the cortex of Cd38 knockout (Cd382/2) mice revealed delayed development of astrocytes and subsequently delayed differentiation of oligodendrocytes (OLs) at postnatal stages. In vitro experiments using primary OL cultures, mixed glial cultures, and astrocytic conditioned medium showed that astrocytic CD38 regulates the development of astrocytes in a cell-autonomous manner and the differentiation of OLs in a non-cell-autonomous manner. Further experiments revealed that connexin43 (Cx43) in astrocytes plays a promotive role for CD38-mediated OL differentiation. Finally, increased levels of NAD1, caused by CD38 deficiency, are likely to be responsible for the suppression of astrocytic Cx43 expression and OL differentiation. Our data indicate that CD38 is a positive regulator of astrocyte and OL development.
引用
收藏
页码:974 / 989
页数:16
相关论文
共 50 条
  • [31] Astroglial FMRP deficiency cell-autonomously up-regulates miR-128 and disrupts developmental astroglial mGluR5 signaling
    Men, Yuqin
    Ye, Liang
    Risgaard, Ryan D.
    Promes, Vanessa
    Zhao, Xinyu
    Paukert, Martin
    Yang, Yongji
    PROCEEDINGS OF THE NATIONAL ACADEMY OF SCIENCES OF THE UNITED STATES OF AMERICA, 2020, 117 (40) : 25092 - 25103
  • [32] USE OF THE MAIZE TRANSPOSONS ACTIVATOR AND DISSOCIATION TO SHOW THAT PHOSPHINOTHRICIN AND SPECTINOMYCIN RESISTANCE GENES ACT NON-CELL-AUTONOMOUSLY IN TOBACCO AND TOMATO SEEDLINGS
    JONES, JDG
    JONES, DA
    BISHOP, GJ
    HARRISON, K
    CARROLL, BJ
    SCOFIELD, SR
    TRANSGENIC RESEARCH, 1993, 2 (02) : 63 - 78
  • [33] β-catenin activation regulates epithelial growth non-cell autonomously within the hair follicle stem cell niche
    Myung, P.
    Deschene, E.
    Rompolas, P.
    Zito, G.
    Yang, T.
    Taketo, M.
    Saotome, I.
    Greco, V.
    JOURNAL OF INVESTIGATIVE DERMATOLOGY, 2014, 134 : S40 - S40
  • [34] A chemokine receptor CXCR7 non-cell-autonomously controls migration and nuclei formation of pontine neurons from the migratory environment
    Zhu, Yan
    Hong, Xun
    Shirosaki, Koki
    Sierro, Frederic
    Mackay, Fabienne
    Nagasawa, Takashi
    Murakami, Fujio
    NEUROSCIENCE RESEARCH, 2011, 71 : E130 - E130
  • [35] Sox6 cell-autonomously stimulates erythroid cell survival, proliferation, and terminal maturation and is thereby an important enhancer of definitive erythropoiesis during mouse development
    Dumitriu, Bogdan
    Patrick, Michael R.
    Petschek, Jane P.
    Cherukuri, Srujana
    Klingmuller, Ursula
    Fox, Paul L.
    Lefebvre, Veronique
    BLOOD, 2006, 108 (04) : 1198 - 1207
  • [36] Cross-coupling of the transcription factors NF-E2 and AP-1 regulates cell-autonomously trophoblast syncytium formation and placental vascularisation
    Kashif, M.
    Hellweg, A.
    Thati, M.
    Shahzad, K.
    Nawroth, P. P.
    Isermann, B.
    JOURNAL OF THROMBOSIS AND HAEMOSTASIS, 2009, 7 : 74 - 74
  • [37] TRX-1 Regulates SKN-1 Nuclear Localization Cell Non-autonomously in Caenorhabditis elegans
    McCallum, Katie C.
    Liu, Bin
    Fierro-Gonzalez, Juan Carlos
    Swoboda, Peter
    Arur, Swathi
    Miranda-Vizuete, Antonio
    Garsin, Danielle A.
    GENETICS, 2016, 203 (01) : 387 - +
  • [38] An NAD+ Biosynthetic Pathway Enzyme Functions Cell Non-Autonomously in C. elegans Development
    Crook, Matt
    MCreynolds, Melanie R.
    Wang, Wenqing
    Hanna-Rose, Wendy
    DEVELOPMENTAL DYNAMICS, 2014, 243 (08) : 965 - 976
  • [39] CD40 ligand functions non-cell autonomously to promote deletion of self-reactive thymocytes
    Williams, JA
    Sharrow, SO
    Adams, AJ
    Hodes, RJ
    JOURNAL OF IMMUNOLOGY, 2002, 168 (06): : 2759 - 2765
  • [40] Novel functions of plant cyclin-dependent kinase inhibitors, ICK1/KRP1, can act non-cell-autonomously and inhibit entry into mitosis
    Weinl, C
    Marquardt, S
    Kuijt, SJH
    Nowack, MK
    Jakoby, MJ
    Hülskamp, M
    Schnittger, A
    PLANT CELL, 2005, 17 (06): : 1704 - 1722