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Demir, L.

Publications and source records attributed to Demir, L..

2 recordsLinked to original sources

Spatial coupling of endogenous Tau translation and degradation by neuroproteasomes in dendrites revealed by STARFISH

Cells regulate protein synthesis, folding, and degradation to maintain proteostasis, and disruptions in these processes have been linked to neurodegenerative diseases. In Alzheimers disease (AD), the protein Tau mislocalizes from axons to the somatodendritic compartment and aggregates into pathological filaments. Although Tau aggregation is a hallmark of AD, the subcellular dynamics of its synthesis and degradation are not well characterized. Because nascent polypeptides are particularly susceptible to misfolding, local control of Tau synthesis and degradation may be essential to prevent aggregation. Here, we develop STARFISH, a method for visualizing the subcellular site of endogenous mRNA translation in primary neurons and in vivo with single-molecule sensitivity and near-codon resolution, without modifying the nascent polypeptide. Using STARFISH, we show that despite the broad distribution of Mapt mRNA, Tau is translated almost exclusively in neuronal dendrites, revealing an unexpected level of spatial regulation. We further identify that one-third of newly synthesized Tau is co- or peri-translationally degraded in dendrites by a neuronal-specific plasma membrane-associated proteasome, the neuroproteasome. Failure of neuroproteasome-mediated degradation leads to the protein synthesis-dependent accumulation of somatodendritically mislocalized Tau aggregates. These findings define a previously unrecognized proteostasis mechanism that counterbalances the constitutive physiological overproduction of Tau. We speculate that failure of this proteostasis system contributes directly to Tau aggregation in dendrites, defining a new pathomechanism in Alzheimers disease.

neuroscience↗

Adolescent-like Processing of Behaviorally Salient Cues in Sensory and Prefrontal Cortices of Adult Preterm-Born Mice

Preterm birth is a leading risk factor for atypicalities in cognitive and sensory processing, but it is unclear how prematurity impacts circuits that support these functions. To address this, we trained adult male and female mice born a day early (preterm mice) on a visual discrimination task and found that they fail to achieve high levels of performance due to increased responding to the non-rewarded cue (false alarms). While the representation of task cues measured with in vivo electrophysiology is intact in the primary visual cortex (V1) of trained preterm mice, the representation of the non-rewarded cue is significantly weaker in regular spiking, putative pyramidal neurons in the prefrontal cortex (PFC), a brain area that mediates response inhibition. Responses to both task cues are blunted in electrophysiologically and optogenetically identified fast-spiking Parvalbumin interneurons in preterm mice, indicating impaired processing of task cues in their PFC. Indeed, single trial neuronal responses evoked by the non-rewarded cue predict the behavioral outcome more accurately in term than in preterm mice. Similar cue representation and processing is present in the PFC of adolescent term-born mice, suggesting that preterm birth impedes prefrontal maturation. Surprisingly, environmental enrichment, a well-established paradigm that promotes sensory maturation, fails to improve the performance of preterm mice. Altogether, our study describes the long-term impact of preterm birth on prefrontal and visual circuits and suggests a limited capacity of early interventions for reducing the risk of cognitive deficits after preterm birth.

neuroscience↗