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Biology subjects

Trinchero, M.

Publications and source records attributed to Trinchero, M..

2 recordsLinked to original sources

Cell-state mapping reveals a reversible neuroblast accumulation in the aging mouse hippocampus

Hippocampal neurogenesis supports learning and memory by generating new granule cells throughout life. However, both the rate and speed of this process decline with age. To elucidate the molecular determinants underlying the effects of aging on neuronal differentiation, we combined lineage tracing of adult-born granule cells (aGCs) with single-nucleus RNA sequencing. This approach produced a temporally resolved transcriptional atlas of aGC development. Aging led to a marked accumulation of postmitotic neuroblasts (NBs), revealing a stage-specific bottleneck in the neurogenic trajectory. Voluntary running reduced NB accumulation by restoring the progression through this developmental impasse, allowing neuronal maturation to be resumed. Notably, this effect involved a significant reduction of apoptosis at the NB stage. Together, these findings identify a reversible apoptotic checkpoint that contributes to age-related neurogenic decline and highlight postmitotic NBs as a key regulatory cell state capable of integrating pro-maturational signals to control the neurogenic output.

neuroscience↗

Audiovisual gamma stimulation enhances hippocampal neurogenesis and neural circuit plasticity in aging mice

Gamma oscillations are disrupted in various neurological disorders, including Alzheimers disease (AD). In AD mouse models, non-invasive audiovisual stimulation (AuViS) at 40 Hz enhances gamma oscillations, clears amyloid-beta, and improves cognition. We investigated mechanisms of circuit remodeling underlying these restorative effects by leveraging the sensitivity of hippocampal neurogenesis to activity in middle-aged wild-type mice. AuViS increased progenitor cell proliferation, neuronal differentiation and morphological maturation of newborn granule cells, promoting their synaptic integration. While visual or auditory stimuli alone induced dendritic growth, axonal changes required combined audiovisual stimulation. The actions of AuViS involved neurotrophin pathways, as shown by the lack of effect upon TrkB signaling blockade. These results reveal widespread plasticity mechanisms triggered by AuViS, a therapeutic approach currently proposed for treating neurological disorders in humans.

neuroscience↗