Background: Tauopathies such as Alzheimer's disease (AD) are characterized by abnormal hyperphosphorylation of the microtubule-associated protein tau (MAPT) aggregating into neurofibrillary tangles (NFTs). O-linked β-N-acetylglucosamine (O-GlcNAc) modifications have been suggested to regulate tau phosphorylation and aggregation and N-acetylglucosaminidase (OGA) removes GlcNAc moieties from proteins.
Methods: We investigated effects of the OGA inhibitor Thiamet G in rTg4510 primary neuronal cultures and in rTg4510 mice. The rTg4510 mice overexpress human tau harboring the P301L mutation and display an age-dependent progression of tau pathology including hyperphosphorylated tau species and NFTs. Aged rTg4510 mice exhibit a non-mnemonic behavioral defect involving a hyperactive phenotype that is associated with the progression of tau pathology.
Results: Thiamet G increased overall O-GlcNAc levels and crossed the blood brain barrier in rTg4510 mice. The free fraction of Thiamet G in the brain was 22-fold above the half maximal effective concentration (EC50) measured in rTg4510 primary neurons. Chronic Thiamet G treatment (18 weeks) initiated in young 6 week old rTg4510 mice increased brain O-GlcNAc levels and this corresponded with a significant reduction in soluble and insoluble hyperphosphorylated tau in aged 24 week old rTg4510 mice. Levels of normally phosphorylated P301L tau were not altered under these conditions. Reduction of hyperphosphorylated tau species by increased O-GlcNAcylation was associated with significant attenuation of hyperactivity in 24 week old rTg4510 mice.
Conclusions: Our findings support the pharmacological inhibition of OGA as a potential therapeutic approach for the treatment of AD and other tauopathies.
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http://dx.doi.org/10.31083/j.jin2205135 | DOI Listing |
J Alzheimers Dis
January 2025
Department of Neuroscience and Pharmacology, University of Iowa, Iowa City, IA, USA.
Neurobiol Aging
February 2025
Institute of Medical Sciences, University of Aberdeen, Aberdeen, United Kingdom; Aberdeen Cardiovascular and Diabetes Centre, Aberdeen, United Kingdom. Electronic address:
Neuroimage
December 2024
Department of Radiopharmacy and Molecular Imaging, Minhang Hospital & School of Pharmacy, Fudan University, Shanghai, China; Department of Functional Brain Imaging Research, China; Department of Clinical and Experimental Neuroimaging, Centre for Development of Advanced Medicine for Dementia, National Centre for Geriatrics and Gerontology, Obu, Japan; Key Laboratory of Smart Drug Delivery, Fudan University, Ministry of Education, Shanghai, China; Institute for Small-Molecule Drug Discovery & Development, Quzhou Fudan Institute, Quzhou, China. Electronic address:
bioRxiv
October 2024
Department of Neurobiology, University of Utah, Salt Lake City, USA.
Commun Biol
October 2024
Department of Physics and Astronomy, University of Exeter, Exeter, EX4 4QL, UK.
There is cumulative evidence that lipid metabolism plays a key role in the pathogenesis of various neurodegenerative disorders including Alzheimer's disease (AD). Visualising lipid content in a non-destructive label-free manner can aid in elucidating the AD phenotypes towards a better understanding of the disease. In this study, we combined multiple optical molecular-specific methods, Fourier transform infrared (FTIR) spectroscopic imaging, synchrotron radiation-infrared (SR-IR) microscopy, Raman and stimulated Raman scattering (SRS) microscopy, and optical-photothermal infrared (O-PTIR) microscopy with multivariate data analysis, to investigate the biochemistry of brain hippocampus in situ using a mouse model of tauopathy (rTg4510).
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