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Hoffmeister-Ullerich, S.

Publications and source records attributed to Hoffmeister-Ullerich, S..

2 recordsLinked to original sources

Cognitive impairments in a mouse model for Huntington's disease correlate with presymptomatic locomotion and number of CAG repeats

Huntingtons disease (HD) is a progressive neurodegenerative disorder caused by an expanded CAG repeat in the huntingtin (HTT) gene. The disease is characterized by movement disorders, and it also presents with personality changes, including apathy and aggression, along with cognitive decline. While most animal models for HD have been validated for motor deficits, less is known about alterations in other behavioral functions. Here, we performed a longitudinal study to analyze the behavior of a knock-in mouse model of HD with a chimeric mouse/human exon 1 containing 140 CAG repeats inserted in the murine huntingtin gene. We specifically inquired about the onset of cognitive impairments in knock-in mice and whether changes in various behavioral functions such as locomotion, anxiety, and cognition correlate at the individual level. Our data indicate that female and male knock-in mice exhibit reductions in body weight, novelty-induced locomotion, and remote spatial memory retrieval. However, social behavior, working, and short-term memory remain unaffected. Within knock-in mice, lower open-field activity correlated with poorer remote memory performance. Moreover, CAG repeat length negatively correlated with locomotor activity and spatial memory, indicating that greater repeat expansion predicts more severe behavioral impairment. These findings identify early affective changes, followed by selective long-term memory and locomotor deficits, in knock-in mice, supporting this model as a useful platform for studying prodromal HD and repeat-length-dependent disease variability. HighlightsO_LICAG140 knock-in mice show early anxiety, later reduced locomotion and memory deficits C_LIO_LILong-term and remote memory are impaired while short-term and working memory are spared C_LIO_LILower locomotion at the age of 8 months correlates with poorer memory at 14 months of age in individual CAG140 knock-in mice C_LIO_LIGreater CAG repeat length predicts worse locomotion and memory C_LI

animal behavior and cognition↗

Temporal Profiling of Upper-Layer Neurons Reveals Changes in the Molecular Landscape Upon Maternal Immune Activation

Neuronal differentiation is a dynamic, multi-layered process that transforms progenitor cells into functionally integrated neurons, yet the coordinated molecular programs underlying this transition remain incompletely understood. Here, we define the developmental trajectory of murine upper-layer cortical neurons using an integrated multi-omics approach combining transcriptomics and proteomics across key stages of neurogenesis. We find that neuronal identity emerges gradually through coordinated transitions from RNA processing and splicing programs toward synaptic and metabolic maturation. Integration of matched transcriptomic and proteomic datasets reveals a compact set of concordant molecular modules that define this trajectory, highlighting post-transcriptional regulation as a central driver of neuronal maturation. We further show that maternal immune activation (MIA), a model of prenatal inflammation, deranges this developmental program. MIA induces sustained upregulation of Wnt signalling pathways alongside a downregulation of synaptic regulators, without detectable global alterations in DNA methylation. These molecular changes are accompanied by defects in neuronal positioning during cortical development, linking altered molecular trajectories to functional outcomes. Together, our findings establish a temporal molecular framework of neuronal differentiation and demonstrate that prenatal environmental perturbations reshape cortical development primarily through post-transcriptional and signalling-based mechanisms.

neuroscience↗