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Berezovska, O.

Publications and source records attributed to Berezovska, O..

3 recordsLinked to original sources

Recording gamma-secretase activity in living mouse brains

{gamma}-Secretase plays a pivotal role in the central nervous system. Our recent development of genetically encoded Forster resonance energy transfer (FRET)-based biosensors has enabled the spatiotemporal recording of {gamma}-secretase activity on a cell-by-cell basis in live neurons in culture. Nevertheless, how {gamma}-secretase activity is regulated in vivo remains unclear. Here we employ the near-infrared (NIR) C99 720-670 biosensor and NIR confocal microscopy to quantitatively record {gamma}-secretase activity in individual neurons in living mouse brains. Intriguingly, we uncovered that {gamma}-secretase activity may influence the activity of {gamma}-secretase in neighboring neurons, suggesting a potential "cell non-autonomous" regulation of {gamma}-secretase in mouse brains. Given that {gamma}-secretase plays critical roles in important biological events and various diseases, our new assay in vivo would become a new platform that enables dissecting the essential roles of {gamma}-secretase in normal health and diseases.

neuroscience↗

Alzheimer's disease linked Aβ42 exerts product feedback inhibition on γsecretase impairing downstream cell signaling

Amyloid {beta} (A{beta}) peptides accumulating in the brain are proposed to trigger Alzheimers disease (AD). However, molecular cascades underlying their toxicity are poorly defined. Here, we explored a novel hypothesis for A{beta}42 toxicity that arises from its proven affinity for {gamma}-secretases. We hypothesized that the reported increases in A{beta}42, particularly in the endolysosomal compartment, promote the establishment of a product feedback inhibitory mechanism on {gamma}-secretases, and thereby impair downstream signaling events. We show that human A{beta}42 peptides, but neither murine A{beta}42 nor human A{beta}17-42 (p3), inhibit {gamma}-secretases and trigger accumulation of unprocessed substrates in neurons, including C-terminal fragments (CTFs) of APP, p75 and pan-cadherin. Moreover, A{beta}42 treatment dysregulated cellular homeostasis, as shown by the induction of p75-dependent neuronal death in two distinct cellular systems. Our findings raise the possibility that pathological elevations in A{beta}42 contribute to cellular toxicity via the {gamma}-secretase inhibition, and provide a novel conceptual framework to address A{beta} toxicity in the context of {gamma}-secretase-dependent homeostatic signaling.

biochemistry↗

Identification of PS1/gamma-secretase and glutamate transporter GLT-1 interaction sites

The recently discovered interaction between Presenilin 1 (PS1), a catalytic subunit of {gamma}-secretase responsible for generating amyloid-{beta} (A{beta}) peptides, and GLT-1, a major glutamate transporter in the brain (EAAT2) provides a mechanistic link between these two key factors involved in Alzheimers disease (AD) pathology. Modulating this interaction can be crucial to understand the consequence of such crosstalk in AD context and beyond. However, the interaction sites between these two proteins are unknown. Herein, we utilized an alanine scanning approach coupled with FRET-based fluorescence lifetime imaging microscopy (FLIM) to identify the interaction sites between PS1 and GLT-1 in their native environment within intact cells. We found that GLT-1 residues at position 276 to 279 (TM5) and PS1 residues at position 249 to 252 (TM6) are crucial for GLT-1/PS1 interaction. These results have been cross validated using AlphaFold Multimer prediction. To further investigate whether this interaction of endogenously expressed GLT-1 and PS1 can be prevented in primary neurons, we designed PS1/GLT-1 cell-permeable peptides (CPPs) targeting the PS1 or GLT-1 binding site. We used HIV TAT domain to allow for cell penetration which was assayed in neurons. First, we assessed the toxicity and penetration of CPPs by confocal microscopy. Next, to ensure the efficiency of CPPs, we monitored the modulation of GLT-1/PS1 interaction in intact neurons by FLIM. We saw significantly less interaction between PS1 and GLT-1 with both CPPs. Our study establishes a new tool to study the functional aspect of GLT-1/PS1 interaction and its relevance in normal physiology and AD models.

biochemistry↗