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Brumberg, J. C.

Publications and source records attributed to Brumberg, J. C..

2 recordsLinked to original sources

Disruption in Patterning in the Whisker-to-Barrel Cortex Pathway Alters Behavior

Mice use their whiskers to convey sensory information, navigate, and explore their environment. We investigated the behavioral impact of the disruption of somatotopic patterning along the whisker-to-barrel pathway utilizing two mouse models: Barrelless (BRL) mice, an adenylyl cyclase 1 variation, in which somatotopic patterning is absent in the barrel cortex, and Prrxl1-/-mice, a genetic knockout in which patterning is disrupted along the entire lemniscal pathway. A textured novel object recognition test was conducted to investigate whisker-dependent discriminatory behavior, and an open field test was conducted to investigate exploratory behavior. Results were compared to an outbred strain (CD-1) and demonstrated that BRL mice were able to discriminate, whereas Prrxl1-/- mice were unable to discriminate between textures, and that both strains exhibited increased anxiety. Exploratory and locomotor behavior increased in BRL mice but decreased in Prrxl1-/- mice. Together, the results suggest that somatotopy may be related to behavioral phenotype.

neuroscience↗

X-ray Diffraction Reveals Periodicity in Murine Neocortex

BackgroundSensory experience impacts brain development. In the mouse somatosensory cortex, sensory deprivation via whisker trimming induces reductions in the perineuronal net (PNN), the size of neuronal cell bodies, the size and orientation of dendritic arbors, the density of dendritic spines, and the level of myelination, among other effects. New MethodsHere, we measured the X-ray diffraction patterns of mouse brain tissue to establish a novel method for examining nanoscale brain structures. Two groups of mice were examined: a control group and one that underwent 30 days of whisker-trimming from birth - an established method of sensory deprivation that affects the mouse barrel cortex (whisker sensory processing region of the primary somatosensory cortex). Mice were perfused, and primary somatosensory cortices (barrel cortex) were isolated for immunocytochemistry and X-ray diffraction imaging. ResultsX-ray images were characterized using a specially developed machine-learning approach, and the clusters that correspond to the two groups are well separated in the space of the principal components. The obtained values for sensitivity/specificity are 1/0.93, and the receiver operator curve classifier is 0.99. ConclusionsWe hypothesize that such separation is related to the development of different nanoscale structural components in the brains of control and sensory deprived mice. The effects of these nanoscale structural formations can be seen in PNN and other micro- and macro-scale structures and assemblies.

neuroscience↗