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Saleki, S.

Publications and source records attributed to Saleki, S..

2 recordsLinked to original sources

Telomere-induced senescence increases aberrant intraneuronal amyloid-β accumulation by impairing autophagy in a mouse model of Alzheimer's disease

Aging is a well-known risk factor for Alzheimers disease (AD) and other neurodegenerative pathologies, but the molecular and cellular changes occurring in the aging brain are poorly understood. AD pathology seems to correlate with the appearance of cells that become senescent due to the progressive accumulation of cellular insults causing DNA damage. In this study, we investigated the role of cellular senescence on AD pathology by crossing an amyloid-{beta} (A{beta}) mouse model of AD (5xFAD) with a mouse model of senescence that is genetically deficient for the RNA component of the telomerase (Terc-/-). Our results show that accelerated senescence reduces amyloid plaque formation and A{beta} levels at an age when full-blown amyloid pathology is observed in 5xFAD mice. However, early and aberrant intraneuronal A{beta} accumulation is observed in the subiculum and cortical layer V of senescent mice. Selective neurodegeneration linked to telomere attrition and early intraneuronal A{beta} accumulation was observed in these particular regions. Finally, our results suggest that the effect of senescence on amyloid pathology might be mediated through an alteration in autophagy function. Altogether, these findings demonstrate the instrumental role of senescence in intraneuronal A{beta} accumulation associated to AD pathophysiology, and further support future approaches targeting these processes for therapeutic intervention.

neuroscience↗

Exploring the frame effect

Probes flashed within a moving frame are dramatically displaced (Ozkan et al, 2021; Wong &Mack, 1981). The effect is much larger than that seen on static or moving probes (induced motion, Duncker, 1929; Wallach et al, 1978). These flashed probes are often perceived with the separation they have in frame coordinates -- a 100% effect. Here we explore this frame effect on flashed tests with several versions of the standard stimulus. We find that the frame effect holds for smoothly or abruptly displacing frames, even when the frame changed shape or orientation between the endpoints of its travel. The path could be non-linear, even circular. The effect was driven by perceived not physical motion. When there were competing overlapping frames, the effect was determined by which frame was attended. There were a number of constraints that limited the effect. A static anchor near the flashes suppressed the effect but an extended static texture did not. If the probes were continuous rather than flashed, the effect was abolished. The observational reports of 30 online participants suggest that the frame effect is robust to many variations in its shape and path and leads to a perception of flashed tests in their locations relative to the frame as if the frame were stationary. Our results highlight the role of frame continuity and of the grouping of the flashes with the frame in generating the frame effect.

neuroscience↗