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Donofrio, S. G.

Publications and source records attributed to Donofrio, S. G..

2 recordsLinked to original sources

Cerebellar Purkinje cell stripe patterns reveal a differential vulnerability and resistance to cell loss during normal aging in mice

Age-related neurodegenerative diseases involve reduced cell numbers and impaired behavioral capacity. Neurodegeneration and behavioral deficits also occur during aging, and notably in the absence of disease. The cerebellum, which modulates movement and cognition, is susceptible to cell loss in both aging and disease. Here, we demonstrate that cerebellar Purkinje cell loss in aged mice is not spatially random but rather occurs in a pattern of parasagittal stripes. We also find that aged mice exhibit impaired motor coordination and more severe tremor compared to younger mice. However, the relationship between patterned Purkinje cell loss and motor dysfunction is not straightforward. Examination of postmortem samples of human cerebella from neurologically typical individuals supports the presence of selective loss of Purkinje cells during aging. These data reveal a spatiotemporal cellular substrate for aging in the cerebellum that may inform how neuronal vulnerability leads to neurodegeneration and the ensuing deterioration of behavior.

neuroscience↗

Developmental transformations of Purkinje cells tracked by DNA electrokinetic mobility

Brain development relies on orchestrated placement and timing of neurogenesis in progenitor zones to produce the expansive cellular diversity of the brain. We took advantage of bioelectric interactions between DNA and embryonic tissue to perform "stereo-tracking", a developmental targeting strategy that differentially labels cells positioned at different depths within intact progenitor zones. This three-dimensional labeling was achieved by delivery of plasmids with distinct electrokinetic mobilities into neural progenitor zones in utero. We applied stereo-tracking with light sheet imaging in the cerebellum and identified that Purkinje cells follow embryonically committed developmental trajectories linking distinct progenitor zone fields to the topography of the mature cerebellar cortex. In the process of stereo-tracking, we identified a previously unreported subcellular structure on the axon initial segment of Purkinje cells. These structures, we termed "axon bubbles", are developmentally timed and differentially labeled by lipid-modified proteins. Our findings demonstrate key rules that orchestrate the stereotyped transformations from fetal progenitors into mature networks of neuronal circuits, and demonstrate the potential of progenitor zone stereo-tracking to reveal new biology within intact developing systems.

neuroscience↗