Reduction of glutamatergic activity through cholinergic dysfunction in the hippocampus of hippocampal cholinergic neurostimulating peptide precursor protein knockout mice.


Journal

Scientific reports
ISSN: 2045-2322
Titre abrégé: Sci Rep
Pays: England
ID NLM: 101563288

Informations de publication

Date de publication:
10 11 2022
Historique:
received: 24 09 2022
accepted: 07 11 2022
entrez: 10 11 2022
pubmed: 11 11 2022
medline: 15 11 2022
Statut: epublish

Résumé

Cholinergic activation can enhance glutamatergic activity in the hippocampus under pathologic conditions, such as Alzheimer's disease. The aim of the present study was to elucidate the relationship between glutamatergic neural functional decline and cholinergic neural dysfunction in the hippocampus. We report the importance of hippocampal cholinergic neurostimulating peptide (HCNP) in inducing acetylcholine synthesis in the medial septal nucleus. Here, we demonstrate that HCNP-precursor protein (pp) knockout (KO) mice electrophysiologically presented with glutamatergic dysfunction in the hippocampus with age. The impairment of cholinergic function via a decrease in vesicular acetylcholine transporter in the pre-synapse with reactive upregulation of the muscarinic M1 receptor may be partly involved in glutamatergic dysfunction in the hippocampus of HCNP-pp KO mice. The results, in combination with our previous reports that show the reduction of hippocampal theta power through a decrease of a region-specific choline acetyltransferase in the stratum oriens of CA1 and the decrease of acetylcholine concentration in the hippocampus, may indicate the defined cholinergic dysfunction in HCNP-pp KO mice. This may also support that HCNP-pp KO mice are appropriate genetic models for cholinergic functional impairment in septo-hippocampal interactions. Therefore, according to the cholinergic hypothesis, the model mice might are potential partial pathological animal models for Alzheimer's disease.

Identifiants

pubmed: 36357544
doi: 10.1038/s41598-022-23846-x
pii: 10.1038/s41598-022-23846-x
pmc: PMC9649636
doi:

Substances chimiques

Phosphatidylethanolamine Binding Protein 0
Acetylcholine N9YNS0M02X
Cholinergic Agents 0

Types de publication

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

Langues

eng

Sous-ensembles de citation

IM

Pagination

19161

Subventions

Organisme : KAKENHI
ID : 19K16922
Organisme : KAKENHI
ID : 20K07891

Informations de copyright

© 2022. The Author(s).

Références

J Neurosci Res. 2002 Jun 1;68(5):511-21
pubmed: 12111841
Behav Brain Res. 2011 Aug 10;221(2):555-63
pubmed: 21145918
Cell Tissue Res. 2018 Sep;373(3):565-575
pubmed: 29250747
Sci Rep. 2021 Nov 11;11(1):22072
pubmed: 34764402
Curr Biol. 2019 Nov 4;29(21):3600-3610.e4
pubmed: 31630953
J Neurochem. 2017 May;141(3):461-471
pubmed: 28266720
Aging Brain. 2022;2:
pubmed: 35465252
Front Neurosci. 2015 May 06;9:160
pubmed: 25999809
Mol Pharmacol. 2003 Dec;64(6):1309-16
pubmed: 14645660
Neuroscience. 1989;31(3):571-91
pubmed: 2687721
Neurosci Lett. 2013 Oct 25;554:167-71
pubmed: 23973303
Brain Res. 1999 Jan 9;815(2):185-91
pubmed: 9878729
Ann Neurol. 2003 Jun;53(6):788-96
pubmed: 12783426
Alzheimers Dement (N Y). 2022 May 04;8(1):e12295
pubmed: 35516416
Cereb Cortex. 2016 Jan;26(1):414-26
pubmed: 26472558
Biochem Pharmacol. 2007 Oct 15;74(8):1134-44
pubmed: 17645875
Brain Res. 1992 Feb 14;572(1-2):164-71
pubmed: 1611510
Nature. 1999 Sep 9;401(6749):173-7
pubmed: 10490027
ACS Chem Neurosci. 2021 Jun 16;12(12):2167-2181
pubmed: 34037379
JAMA. 2019 Oct 22;322(16):1589-1599
pubmed: 31638686
Aging Cell. 2021 Feb;20(2):e13305
pubmed: 33448137
Int J Mol Sci. 2019 Oct 28;20(21):
pubmed: 31661900
Brain Struct Funct. 2015;220(3):1449-62
pubmed: 24599786
Exp Brain Res. 2022 May;240(5):1589-1604
pubmed: 35357523
Neuroscience. 1983 Dec;10(4):1185-201
pubmed: 6320048
Biochim Biophys Acta. 1984 Oct 23;790(2):174-81
pubmed: 6435678
J Neurosci. 2005 Nov 30;25(48):11194-200
pubmed: 16319319
Nat Rev Neurosci. 2016 Apr;17(4):239-49
pubmed: 26961163
J Neurosci. 1995 May;15(5 Pt 2):4077-92
pubmed: 7751967
Neuron. 2011 Jul 14;71(1):155-65
pubmed: 21745645
Lancet. 1976 Dec 25;2(8000):1403
pubmed: 63862
J Neurosci. 2010 Jan 20;30(3):885-93
pubmed: 20089897
Biochem Biophys Res Commun. 2021 Jan 24;542:80-86
pubmed: 33503541
Prog Neurobiol. 2000 Jan;60(1):37-83
pubmed: 10622376
Cell Transplant. 2017 Sep;26(9):1542-1550
pubmed: 29113468
Neurosci Lett. 2015 Jun 15;597:1-6
pubmed: 25899776

Auteurs

Kengo Suzuki (K)

Department of Neurology, Graduate School of Medical Sciences, Nagoya City University, 1 Kawasumi, Mizuho-Ku, Nagoya, 467-8602, Japan.

Yoshiaki Ohi (Y)

Laboratory of Neuropharmacology, School of Pharmacy, Aichi Gakuin University, 1-100 Kusumoto, Chikusa-Ku, Nagoya, 464-8650, Japan.

Toyohiro Sato (T)

Department of Neurology, Graduate School of Medical Sciences, Nagoya City University, 1 Kawasumi, Mizuho-Ku, Nagoya, 467-8602, Japan.

Yo Tsuda (Y)

Department of Neurology, Graduate School of Medical Sciences, Nagoya City University, 1 Kawasumi, Mizuho-Ku, Nagoya, 467-8602, Japan.

Yuta Madokoro (Y)

Department of Neurology, Graduate School of Medical Sciences, Nagoya City University, 1 Kawasumi, Mizuho-Ku, Nagoya, 467-8602, Japan.

Masayuki Mizuno (M)

Department of Neurology, Graduate School of Medical Sciences, Nagoya City University, 1 Kawasumi, Mizuho-Ku, Nagoya, 467-8602, Japan.

Kenichi Adachi (K)

Department of Neurology, Graduate School of Medical Sciences, Nagoya City University, 1 Kawasumi, Mizuho-Ku, Nagoya, 467-8602, Japan.

Yuto Uchida (Y)

Department of Neurology, Graduate School of Medical Sciences, Nagoya City University, 1 Kawasumi, Mizuho-Ku, Nagoya, 467-8602, Japan.

Akira Haji (A)

Laboratory of Neuropharmacology, School of Pharmacy, Aichi Gakuin University, 1-100 Kusumoto, Chikusa-Ku, Nagoya, 464-8650, Japan.

Kosei Ojika (K)

Department of Neurology, Graduate School of Medical Sciences, Nagoya City University, 1 Kawasumi, Mizuho-Ku, Nagoya, 467-8602, Japan.

Noriyuki Matsukawa (N)

Department of Neurology, Graduate School of Medical Sciences, Nagoya City University, 1 Kawasumi, Mizuho-Ku, Nagoya, 467-8602, Japan. norim@med.nagoya-cu.ac.jp.

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Classifications MeSH