Wednesday, September 23, 2026

Neuron Stimulation Improves Symptoms in Mouse Model of Huntington’s Disease

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"... An international team of neuroscientists wondered if they could rebalance these damaged neural circuits. In a mouse model of Huntington’s disease, the researchers stimulated specific brain cells near the damaged ones within the circuits. This stimulation caused the motor cortex to function more normally, enabling the mice to learn new motor skills and improving their behavioral symptoms for days. The researchers report their findings in the July issue of Nature. ..."

From the abstract:
"Huntington’s disease (HD) is a devastating movement disorder without a cure at present. Although the monogenic basis of HD is well defined, the complex downstream effects that underlie behavioural symptoms are poorly understood. These effects include cortical dysfunction, yet the roles of specific cortical neuronal subtypes in HD symptoms remain largely unexplored.
Here we used longitudinal in vivo two-photon calcium imaging to examine the activity of three cortical inhibitory neuron (IN) subtypes and excitatory corticostriatal (CStr) projection neurons in the motor cortex of the transgenic R6/2 HD mouse model throughout disease progression. We found that motor deficits in R6/2 mice were accompanied by neuron subtype-specific abnormalities in movement-related activity. This included marked hypoactivity of vasoactive intestinal peptide (VIP)-INs and CStr neurons, which was also observed in the knock-in zQ175DN HD mouse model.
Optogenetic activation of VIP-INs in R6/2 mice restored healthy levels of activity in VIP-INs and their downstream CStr neurons and ameliorated motor deficits in R6/2 mice; behavioural improvements persisted for days after stimulation. Our findings highlight cortical INs as a potential therapeutic target for HD."

Neuron Stimulation Improves Symptoms in Mouse Model of Huntington’s Disease "Using targeted light stimulation, scientists successfully recalibrated damaged brain circuits to restore movement and motor learning in mice."



Fig. 3: Optogenetic activation of VIP-INs normalizes VIP-IN and CStr neuron activity.


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