Contact information
Research groups
Nathaniel Gould
PhD
Guarantors of Brain Non-Clinical Research Fellow
Identifying and Manipulating Metabolic Pathways Contributing to Alzheimer's Disease
I am interested in the physical manifestation of memory in the central nervous system. I use molecular, cellular and behaviour approaches in rodent models and cells, in an effort to understand how internal representations of the external world are formed, maintained, updated and lost.
My research focuses on the removable memory constraint quinone reductase 2 (QR2), a redox enzyme about which very little is known in the brain. I described the QR2 pathway, which modulates inhibitory interneuron activity to allow the formation of distinct memories of novel/salient experiences. I also found that QR2 can become a source of metabolic stress in the brain, and created small molecule QR2 inhibitors for basic and translational research.
Presently, I am leading a project at the TNDR group aiming to identify stress- and stress response differences in iPSC derived neural cells from healthy individuals and those living with dementia, while evaluating the therapeutic potential of QR2 inhibition.
Recent publications
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Specific quinone reductase 2 inhibitors reduce metabolic burden and reverse Alzheimer’s disease phenotype in mice
Journal article
GOULD N., (2023), Journal of Clinical Investigation
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Ribosome subunits are upregulated in brain samples of a subgroup of individuals with schizophrenia: A systematic gene expression meta-analysis
Journal article
Mekiten O. et al, (2023), Journal of Psychiatric Research
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Somatostatin Interneurons of the Insula Mediate QR2-Dependent Novel Taste Memory Enhancement
Journal article
Gould NL. et al, (2021), eneuro, 8, ENEURO.0152 - 21.2021
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Insula to mPFC reciprocal connectivity differentially underlies novel taste neophobic response and learning in mice
Journal article
Kayyal H. et al, (2021), eLife, 10
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Parvalbumin interneuron inhibition onto anterior insula neurons projecting to the basolateral amygdala drives aversive taste memory retrieval
Journal article
Yiannakas A. et al, (2021), Current Biology, 31, 2770 - 2784.e6
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Dopamine-Dependent QR2 Pathway Activation in CA1 Interneurons Enhances Novel Memory Formation
Journal article
Gould NL. et al, (2020), The Journal of Neuroscience, 40, 8698 - 8714
