The greatest risk factor for developing Alzheimer's disease (AD) is increasing age. Understanding the changes that occur in aging that make an aged brain more susceptible to developing AD could result in novel therapeutic targets. In order to better understand these changes, the current study utilized mice harboring a regulatable mutant P301L human transgene (rTg(TauP301L)4510), in which P301L tau expression can be turned off or on by the addition or removal of doxycycline in the drinking water. This regulatable expression allowed for assessment of aging independent of prolonged mutant tau expression. Our results suggest that P301L expression in aged mice enhances memory deficits in the Morris water maze task. These behavioral changes may be due to enhanced late-stage tau pathology, as evidenced by immunoblotting and exacerbated hippocampal dysregulation of glutamate release and uptake measured by the microelectrode array technique. We additionally observed changes in proteins important for the regulation of glutamate and tau phosphorylation that may mediate these age-related changes. Thus, age and P301L tau interact to exacerbate tau-induced detrimental alterations in aged animals.
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http://dx.doi.org/10.3390/ijms222111637 | DOI Listing |
Alzheimers Dement
December 2024
Department of Cell Biology and Pathology, New York, NY, USA.
Background: Possession of the APOE4 allele is the strongest genetic risk factor for developing the sporadic form of Alzheimer's disease (AD). Studies investigating APOE4's associated AD risk have largely centered on APOE4's propensity to regulate the deposition of extracellular amyloid beta plaques. More recent attempts to characterize APOE4's role in AD have brought into question the role APOE4 may possess in modulating the pathogenesis of intracellular tau tangles.
View Article and Find Full Text PDFBackground: Tauopathies are a group of neurodegenerative disorders which are characterized by the accumulation of abnormal tau protein in the brain. However, the mechanistic understanding of pathogenic tau formation and spread within the brain remains elusive. Astrocytes are major immune reactive cells in the brain and have been implicated in exacerbating tau pathology by releasing extracellular vesicles (AEVs) containing pro-inflammatory cytokines and chemokines upon activation.
View Article and Find Full Text PDFAlzheimers Dement
December 2024
Mayo Clinic Florida, Jacksonville, FL, USA.
Background: We previously identified the novel mechanism of pathological tau transfer via extracellular vesicles (EVs) in Alzheimer's disease (AD). Targeting EV secretion to mitigate tau transfer is therefore a promising therapeutic approach for AD. P2X purinoreceptor 7 (P2RX7), an ATP-gated cationic channel, regulates microvesicle shedding or secretion of multivesicular body-derived exosomes.
View Article and Find Full Text PDFAlzheimers Dement
December 2024
University of Missouri, Columbia, MO, USA.
Background: This study was to elucidate the impact of blast-induced neurotrauma (BINT) on phosphoproteome networks and cognition in a genetically heterogeneous population of mice (rTg4510) with the human tau P301L mutation linked to Alzheimer's disease-related dementia (ADRD) including frontotemporal dementia.
Method: Mild traumatic brain injury was induced in rTg4510 mice exposed to a single low-density blast (LIB) at an upright position. After assessment of cognitive function by the automated-Home Cage Monitoring (aHCM) system, frontal cortex tissue was collected at 40 days post-injury.
Alzheimers Dement
December 2024
Alzheimer's Center at Lewis Katz School of Medicine, Temple University, Philadelphia, PA, USA.
Background: Alzheimer's disease (AD) is characterized- at both early and late stages- by neurovascular impairment. In AD, dysfunctional cerebral microvasculature is accompanied by an inflammatory response, contributing to Aβ and tau accumulation, brain cell stress and death, impaired clearance of metabolic waste, BBB permeability, and ultimately leading to neuronal demise and cognitive impairment. We previously showed that Aβ peptides induce mitochondrial dysregulation and caspase-mediated apoptosis in brain cells, including endothelial, glial, and smooth muscle cells.
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