Inhibition of microtubule assembly competent tubulin synthesis leads to accumulation of phosphorylated tau in neuronal cell bodies.


Journal

Biochemical and biophysical research communications
ISSN: 1090-2104
Titre abrégé: Biochem Biophys Res Commun
Pays: United States
ID NLM: 0372516

Informations de publication

Date de publication:
15 01 2020
Historique:
received: 07 10 2019
accepted: 29 10 2019
pubmed: 9 11 2019
medline: 28 7 2020
entrez: 9 11 2019
Statut: ppublish

Résumé

Neurofibrillary tangles, a pathological hallmark of Alzheimer's disease (AD), are somatodendritic filamentous inclusions composed of hyperphosphorylated tau. Microtubule loss is also a common feature of affected neurons in AD. However, whether and how the disruptions of microtubules and the microtubule-associated proteins occur in the pathogenesis of AD remain unclear. Recent evidence indicates that reduced expression of tubulin by knocking down a tubulin chaperon can cause tau neurotoxicity. Thus, the disruption of tubulin homeostasis may result in the acquisition of tau pathogenesis and ultimately cause tauopathy. To investigate whether the disruption of tubulin maintenance induces tau abnormalities in mammalian neurons, we developed a miRNA-mediated knockdown system of tubulin-specific chaperon E (Tbce), which is a factor required for the de novo synthesis of tubulin. Tbce knockdown in mouse primary cultured neurons induced an increase in tubulin in the cell body at 14 days in vitro. Accumulated tubulin was not acetylated or incorporated in microtubules, indicating that they were functionally inert. Concomitantly, tau also accumulated in neuronal cell bodies. The mis-localized tau was phosphorylated at Ser202/Thr205 and Ser396/Ser404. These results indicate that Tbce knockdown in mammalian neurons induces not only a reduction in properly folded tubulins, which are microtubule assembly competent, but also an accumulation of phosphorylated tau in the cell body of mammalian neurons. These findings suggest that disruption of the homeostatic mechanism for maintaining tubulin biosynthesis and/or microtubules can cause tau accumulation in the cell body, which is commonly observed in tauopathies.

Identifiants

pubmed: 31699369
pii: S0006-291X(19)32107-2
doi: 10.1016/j.bbrc.2019.10.191
pii:
doi:

Substances chimiques

Tuba1a protein, mouse 0
Tubulin 0
tau Proteins 0

Types de publication

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

Langues

eng

Sous-ensembles de citation

IM

Pagination

779-785

Informations de copyright

Copyright © 2019 Elsevier Inc. All rights reserved.

Auteurs

Hitomi Fujiwara (H)

Department of Neuropathology, Faculty of Life and Medical Sciences, Doshisha University, Kyoto, 610-0394, Japan.

Shoji Watanabe (S)

Laboratory of Ion Channel Pathophysiology, Graduate School of Brain Science, Doshisha University, Kyoto, 610-0394, Japan.

Minori Iwata (M)

Laboratory of Ion Channel Pathophysiology, Graduate School of Brain Science, Doshisha University, Kyoto, 610-0394, Japan.

Shouyou Ueda (S)

Department of Neuropathology, Faculty of Life and Medical Sciences, Doshisha University, Kyoto, 610-0394, Japan.

Mika Nobuhara (M)

Department of Neuropathology, Faculty of Life and Medical Sciences, Doshisha University, Kyoto, 610-0394, Japan.

Satoko Wada-Kakuda (S)

Department of Neuropathology, Faculty of Life and Medical Sciences, Doshisha University, Kyoto, 610-0394, Japan.

Hiroaki Misonou (H)

Laboratory of Ion Channel Pathophysiology, Graduate School of Brain Science, Doshisha University, Kyoto, 610-0394, Japan; Center for Research in Neurodegenerative Diseases, Doshisha University, Kyoto, 610-0394, Japan.

Tomohiro Miyasaka (T)

Department of Neuropathology, Faculty of Life and Medical Sciences, Doshisha University, Kyoto, 610-0394, Japan; Center for Research in Neurodegenerative Diseases, Doshisha University, Kyoto, 610-0394, Japan. Electronic address: tomiyasa@mail.doshisha.ac.jp.

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Classifications MeSH