The Properties and Functions of Glial Cell Types of the Hypothalamic Median Eminence.

NG2 glia astrocytes hypothalamus median eminence (ME) microglia oligodendrocyte precursor cells (OPCs) pituitary gland tanycytes

Journal

Frontiers in endocrinology
ISSN: 1664-2392
Titre abrégé: Front Endocrinol (Lausanne)
Pays: Switzerland
ID NLM: 101555782

Informations de publication

Date de publication:
2022
Historique:
received: 26 05 2022
accepted: 17 06 2022
entrez: 15 8 2022
pubmed: 16 8 2022
medline: 17 8 2022
Statut: epublish

Résumé

The median eminence (ME) is part of the neuroendocrine system (NES) that functions as a crucial interface between the hypothalamus and pituitary gland. The ME contains many non-neuronal cell types, including oligodendrocytes, oligodendrocyte precursor cells (OPCs), tanycytes, astrocytes, pericytes, microglia and other immune cells, which may be involved in the regulation of NES function. For example, in mice, ablation of tanycytes (a special class of ependymal glia with stem cell-like functions) results in weight gain, feeding, insulin insensitivity and increased visceral adipose, consistent with the demonstrated ability of these cells to sense and transport both glucose and leptin, and to differentiate into neurons that control feeding and metabolism in the hypothalamus. To give a further example, OPCs in the ME of mice have been shown to rapidly respond to dietary signals, in turn controlling composition of the extracellular matrix in the ME, derived from oligodendrocyte-lineage cells, which may contribute to the previously described role of these cells in actively maintaining leptin-receptor-expressing dendrites in the ME. In this review, we explore and discuss recent advances such as these, that have developed our understanding of how the various cell types of the ME contribute to its function in the NES as the interface between the hypothalamus and pituitary gland. We also highlight avenues of future research which promise to uncover additional functions of the ME and the glia, stem and progenitor cells it contains.

Identifiants

pubmed: 35966104
doi: 10.3389/fendo.2022.953995
pmc: PMC9363565
doi:

Substances chimiques

Leptin 0

Types de publication

Journal Article Review Research Support, Non-U.S. Gov't

Langues

eng

Sous-ensembles de citation

IM

Pagination

953995

Subventions

Organisme : Medical Research Council
ID : MR/T000759/1
Pays : United Kingdom

Informations de copyright

Copyright © 2022 Clayton, Lovell-Badge and Galichet.

Déclaration de conflit d'intérêts

The authors declare that the research was conducted in the absence of any commercial or financial relationships that could be construed as a potential conflict of interest.

Références

J Neuroinflammation. 2022 Jun 9;19(1):136
pubmed: 35681242
Glia. 2003 Nov;44(2):102-10
pubmed: 14515326
Nat Neurosci. 2019 Jan;22(1):7-14
pubmed: 30531847
Front Cell Neurosci. 2020 Aug 06;14:198
pubmed: 32848611
Domest Anim Endocrinol. 2020 Jul;72:106438
pubmed: 32388344
Glia. 2009 Mar;57(4):362-79
pubmed: 18803307
Front Immunol. 2018 Apr 13;9:698
pubmed: 29706957
Nat Metab. 2019 Mar;1(3):314-320
pubmed: 32694719
Immunol Lett. 2022 May;245:51-60
pubmed: 35413354
Development. 2011 Feb;138(4):745-53
pubmed: 21266410
Acta Neuropathol. 2010 Jan;119(1):7-35
pubmed: 20012068
Cell Metab. 2021 Jul 6;33(7):1433-1448.e5
pubmed: 34129812
Nat Commun. 2015 Feb 27;6:6385
pubmed: 25721933
J Neurochem. 2003 Jan;84(1):189-95
pubmed: 12485415
J Neuroendocrinol. 2022 Jan;34(1):e13079
pubmed: 34970803
J Clin Invest. 2021 Sep 15;131(18):
pubmed: 34324439
Front Neuroendocrinol. 2010 Jul;31(3):241-58
pubmed: 20546773
Cell Rep. 2021 Jul 13;36(2):109362
pubmed: 34260928
J Cell Biochem. 2001;80(4):491-503
pubmed: 11169733
J Anesth. 2018 Oct;32(5):731-739
pubmed: 30167784
J Neurochem. 2006 Aug;98(3):962-72
pubmed: 16893426
Cell Metab. 2016 May 10;23(5):797-810
pubmed: 27166944
J Mol Med (Berl). 2019 Aug;97(8):1085-1097
pubmed: 31129757
Cell Metab. 2013 Apr 2;17(4):607-17
pubmed: 23562080
J Comp Neurol. 2010 Apr 1;518(7):943-62
pubmed: 20127760
Sci Rep. 2016 Mar 10;6:22864
pubmed: 26960267
iScience. 2020 Mar 27;23(3):100921
pubmed: 32143135
Endocrinology. 2015 Jul;156(7):2713-23
pubmed: 25942072
Neuron. 2015 Dec 2;88(5):941-956
pubmed: 26606998
J Neuroendocrinol. 2010 Jul;22(7):639-49
pubmed: 20492366
Front Cell Neurosci. 2017 Sep 27;11:300
pubmed: 29021743
Nat Rev Neurosci. 2009 Jan;10(1):9-22
pubmed: 19096367
Mol Neurobiol. 2019 Feb;56(2):769-796
pubmed: 29796992
Front Integr Neurosci. 2013 Jul 15;7:53
pubmed: 23874274
Neurosci Lett. 2022 May 14;779:136633
pubmed: 35429588
J Neuroendocrinol. 2002 Mar;14(3):247-55
pubmed: 11999726
J Neuroendocrinol. 2019 Jun;31(6):e12733
pubmed: 31077470
Neurotherapeutics. 2017 Oct;14(4):974-984
pubmed: 28766273
Exp Brain Res. 2000 May;132(1):10-26
pubmed: 10836632
Front Neurosci. 2019 Mar 19;13:240
pubmed: 30941008
PLoS Biol. 2014 Mar 11;12(3):e1001808
pubmed: 24618750
J Neurosci. 2013 Apr 3;33(14):6170-80
pubmed: 23554498
J Neuroinflammation. 2020 May 6;17(1):146
pubmed: 32375817
Neuroscience. 1989;33(3):567-78
pubmed: 2636710
Development. 2008 Jan;135(1):145-57
pubmed: 18045844
J Clin Invest. 2021 May 17;131(10):
pubmed: 33848272
Glia. 2020 Oct;68(10):1987-2000
pubmed: 32173924
Cell Metab. 2017 Jul 5;26(1):185-197.e3
pubmed: 28683286
Diabetes. 2017 Apr;66(4):908-919
pubmed: 27903745
Neuron. 2020 Jul 22;107(2):306-319.e9
pubmed: 32407670
Cell Rep. 2018 Oct 23;25(4):934-946.e5
pubmed: 30355499
Front Neurosci. 2014 Jun 13;8:157
pubmed: 24982613
Science. 2016 Feb 19;351(6275):849-54
pubmed: 26912893
J Neuroendocrinol. 2022 May;34(5):e13104
pubmed: 35233849
J Neuroinflammation. 2021 Jun 21;18(1):140
pubmed: 34154608
Nat Metab. 2021 Aug;3(8):1071-1090
pubmed: 34341568
Cell Metab. 2014 Feb 4;19(2):293-301
pubmed: 24506870
Nat Commun. 2021 Apr 16;12(1):2288
pubmed: 33863883
Front Cell Neurosci. 2021 Apr 29;15:673132
pubmed: 33994951
PLoS Biol. 2010 Nov 02;8(11):e1000527
pubmed: 21072242
Maedica (Bucur). 2013 Mar;8(1):11-6
pubmed: 24023592
Int J Mol Sci. 2021 May 15;22(10):
pubmed: 34063496
Mol Cell Endocrinol. 2017 Apr 15;445:7-13
pubmed: 27530416
J Neuroendocrinol. 2019 May;31(5):e12726
pubmed: 31050045
Mult Scler Int. 2013;2013:836486
pubmed: 24260717
Cell Rep. 2020 Aug 18;32(7):108047
pubmed: 32814050
Int Rev Cytol. 2005;247:89-164
pubmed: 16344112
Int J Mol Sci. 2021 Jul 28;22(15):
pubmed: 34360816
Endocrinology. 2011 Jun;152(6):2353-63
pubmed: 21486931
Neuropsychopharmacol Rep. 2022 Mar;42(1):52-58
pubmed: 35090101
FEBS J. 2022 Apr;289(8):2110-2127
pubmed: 34496137
Peptides. 2010 Apr;31(4):757-76
pubmed: 20093161
Curr Biol. 2014 Dec 1;24(23):R1111-6
pubmed: 25465326
Curr Top Behav Neurosci. 2018;35:529-557
pubmed: 28956320
Nat Neurosci. 2012 Mar 25;15(5):700-2
pubmed: 22446882
Nat Commun. 2017 Sep 7;8(1):484
pubmed: 28883467
Cell. 2019 Oct 3;179(2):292-311
pubmed: 31585077

Auteurs

Richard W Clayton (RW)

Laboratory of Stem Cell Biology and Developmental Genetics, The Francis Crick Institute, London, United Kingdom.

Robin Lovell-Badge (R)

Laboratory of Stem Cell Biology and Developmental Genetics, The Francis Crick Institute, London, United Kingdom.

Christophe Galichet (C)

Laboratory of Stem Cell Biology and Developmental Genetics, The Francis Crick Institute, London, United Kingdom.

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Classifications MeSH