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bioRxiv · 10.1101/598862

Scopolamine and medial frontal stimulus-processing during interval timing

Abstract

Neurodegenerative diseases such as Parkinsons disease (PD), dementia with Lewy Bodies (DLB), and Alzheimers disease (AD) involve loss of cholinergic neurons in the basal forebrain. Here, we investigate how cholinergic dysfunction impacts the frontal cortex during interval timing, a process that can be impaired in PD and AD patients. Interval timing requires participants to estimate an interval of several seconds by making a motor response, and depends on the medial frontal cortex (MFC), which is richly innervated by basal forebrain cholinergic projections. Past work has shown that scopolamine, a muscarinic cholinergic receptor antagonist, reliably impairs interval timing. We tested the hypothesis that scopolamine would attenuate time-related ramping, a key form of temporal processing in the MFC. We recorded neuronal ensembles from 8 mice during performance of a 12-s fixed-interval timing task, which was impaired by the administration of scopolamine. Consistent with past work, scopolamine impaired timing. To our surprise, we found that time-related ramping was unchanged, but stimulus-related activity was enhanced in the MFC. Principal component analyses revealed no consistent changes in time-related ramping components, but did reveal changes in higher components. Taken together, these data indicate that scopolamine changes stimulus-processing rather than temporal processing in the MFC. These data could help understand how cholinergic dysfunction affects cortical circuits in diseases such as PD, DLB, and AD.\n\nHighlightsO_LIThe cholinergic muscarinic inhibitor scopolamine impairs interval timing behavior.\nC_LIO_LIScopolamine does not change time-related ramping activity in the medial frontal cortex.\nC_LIO_LIMedial prefrontal stimulus-related modulation increased\nC_LI

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BibTeXRIS

Zhang, Q., Jung, D., Larson, T., Kim, Y., Narayanan, N.. 2019-04-05. Scopolamine and medial frontal stimulus-processing during interval timing. https://doi.org/10.1101/598862

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