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Published on: March 11, 2020
Striatal synaptic dysfunction and hippocampal plasticity deficits in the Hu97/18 mouse model of Huntington disease
Karolina Kolodziejczyk1, Matthew P Parsons1, Amber L Southwell2
1Department of Psychiatry, Brain Research Centre, University of British Columbia, Vancouver, British Columbia, Canada.
Insights
This study reveals progressive synaptic dysfunction in Huntington disease (HD) mouse models. The humanized Hu97/18 mouse shows deficits in synaptic function and plasticity, particularly at 9 months, aiding preclinical research.
Area of Science:
- Neuroscience
- Genetics
- Molecular Biology
Background:
- Huntington disease (HD) is a fatal neurodegenerative disorder caused by CAG repeat expansion in the huntingtin gene (HTT).
- Existing HD animal models often lack accurate human genetic recapitulation.
- The Hu97/18 mouse model genetically mimics human HD with human HTT alleles.
Purpose of the Study:
- To investigate electrophysiological changes in the Hu97/18 Huntington disease mouse model.
- To assess synaptic function and plasticity in different brain regions and at various ages.
- To determine an optimal age for electrophysiological assessment in preclinical HD studies.
Main Methods:
- Electrophysiological recordings were performed in the striatum and hippocampus of Hu97/18 mice at 3, 6, and 9 months of age.
- Measurements included membrane properties, spontaneous excitatory postsynaptic currents (sEPSCs), and long-term potentiation (LTP).
- Comparison was made between Hu97/18 mice and control groups (implied).
Main Results:
- At 9 months, Hu97/18 mice showed altered striatal spiny projection neuron (SPN) membrane properties and reduced sEPSC amplitude/frequency.
- A profound deficiency in CA3-to-CA1 synapse long-term potentiation (LTP) was observed in 9-month-old Hu97/18 mice.
- Subtle synaptic transmission changes were noted at 6 months, with no significant electrophysiological alterations at 3 months.
Conclusions:
- Hu97/18 mice exhibit progressive deficits in synaptic function and plasticity, correlating with behavioral abnormalities.
- Nine months represents an optimal age for electrophysiological evaluation of HD progression in this model.
- These findings support the Hu97/18 model's utility for preclinical Huntington disease research.
Abstract:
Huntington disease (HD) is a fatal neurodegenerative disorder caused by a CAG repeat expansion in the gene (HTT) encoding the huntingtin protein (HTT). This mutation leads to multiple cellular and synaptic alterations that are mimicked in many current HD animal models. However, the most commonly used, well-characterized HD models do not accurately reproduce the genetics of human disease. Recently, a new 'humanized' mouse model, termed Hu97/18, has been developed that genetically recapitulates human HD, including two human HTT alleles, no mouse Hdh alleles and heterozygosity of the HD mutation. Previously, behavioral and neuropathological testing in Hu97/18 mice revealed many features of HD, yet no electrophysiological measures were employed to investigate possible synaptic alterations. Here, we describe electrophysiological changes in the striatum and hippocampus of the Hu97/18 mice. At 9 months of age, a stage when cognitive deficits are fully developed and motor dysfunction is also evident, Hu97/18 striatal spiny projection neurons (SPNs) exhibited small changes in membrane properties and lower amplitude and frequency of spontaneous excitatory postsynaptic currents (sEPSCs); however, release probability from presynaptic terminals was unaltered. Strikingly, these mice also exhibited a profound deficiency in long-term potentiation (LTP) at CA3-to-CA1 synapses. In contrast, at 6 months of age we found only subtle alterations in SPN synaptic transmission, while 3-month old animals did not display any electrophysiologically detectable changes in the striatum and CA1 LTP was intact. Together, these data reveal robust, progressive deficits in synaptic function and plasticity in Hu97/18 mice, consistent with previously reported behavioral abnormalities, and suggest an optimal age (9 months) for future electrophysiological assessment in preclinical studies of HD.

