The relationship between SV2A levels, neural activity, and cognitive function in healthy humans: A [11C]UCB-J PET and fMRI study

Author:

Shatalina Ekaterina12,Onwordi Ellis Chika1234,Whitehurst Thomas1234,Whittington Alexander5,Mansur Ayla5,Arumuham Atheeshaan126,Statton Ben27,Berry Alaine27,Marques Tiago Reis1,Gunn Roger N.5,Natesan Sridhar12,Nour Matthew M.89,Rabiner Eugenii A.5,Wall Matthew B.57,Howes Oliver D.126

Affiliation:

1. Department of Psychosis Studies, Institute of Psychiatry, Psychology and Neuroscience, King’s College London, London, United Kingdom

2. MRC Laboratory of Medical Science, Imperial College London, London, United Kingdom

3. Centre for Psychiatry and Mental Health, Wolfson Institute of Population Health, Queen Mary University of London, London, United Kingdom

4. East London NHS Foundation Trust, London, United Kingdom

5. Invicro, London, United Kingdom

6. South London and Maudsley NHS Foundation Trust, London, United Kingdom

7. Faculty of Medicine, Imperial College London, London, United Kingdom

8. Departement of Psychiatry, Oxford University, Oxford, United Kingdom

9. Max Planck UCL Centre for Computational Psychiatry and Ageing Research, University College London, London, United Kingdom

Abstract

Abstract Synaptic terminal density is thought to influence cognitive function and neural activity, yet its role in cognition has not been explored in healthy humans. We examined these relationships using [11C]UCB-J positron emission tomography (PET) and functional magnetic resonance imaging (fMRI) in 25 healthy adults performing cognitive function tasks in the scanner. We found a significant positive association between synaptic terminal density, indicated by [11C]UCB-J PET distribution volume ratio (DVRcs), and neural activity during task switching (PLS-CA, second canonical component, r = 0.63, p = 0.043) with the thalamus-putamen data positively contributing to this relationship (PLS-CA loading 0.679, exploratory Pearson’s correlation r = 0.42, p = 0.044, uncorrected). Furthermore, synaptic terminal density predicted switch cost (PLS-R, R2 = 0.45, RMSE = 0.06, p = 0.022), with DVRcs negatively correlating with switch cost in key brain regions including the dorsolateral prefrontal cortex and posterior frontal cortex. Conversely, no significant relationships were observed between [11C]UCB-J DVRcs and neural activity or performance measures in the N-back working memory task, suggesting interindividual differences in synaptic terminal density may be more closely related to some cognitive functions and not others.

Publisher

MIT Press

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