Literature DB >> 33905474

Mapping autonomic, mood and cognitive effects of hypothalamic region deep brain stimulation.

Clemens Neudorfer1, Gavin J B Elias1, Martin Jakobs1,2, Alexandre Boutet1,3, Jürgen Germann1, Keshav Narang1, Aaron Loh1, Michelle Paff1, Andreas Horn4, Walter Kucharczyk3, Wissam Deeb5, Bryan Salvato6, Leonardo Almeida5, Kelly D Foote5, Paul B Rosenberg7, David F Tang-Wai8, William S Anderson9, Zoltan Mari10, Francisco A Ponce11, David A Wolk12, Anna D Burke13, Stephen Salloway14, Marwan N Sabbagh10, M Mallar Chakravarty15,16,17, Gwenn S Smith7, Constantine G Lyketsos7, Michael S Okun5, Andres M Lozano1.   

Abstract

Because of its involvement in a wide variety of cardiovascular, metabolic and behavioural functions, the hypothalamus constitutes a potential target for neuromodulation in a number of treatment-refractory conditions. The precise neural substrates and circuitry subserving these responses, however, are poorly characterized to date. We sought to retrospectively explore the acute sequelae of hypothalamic region deep brain stimulation and characterize their neuroanatomical correlates. To this end we studied-at multiple international centres-58 patients (mean age: 68.5 ± 7.9 years, 26 females) suffering from mild Alzheimer's disease who underwent stimulation of the fornix region between 2007 and 2019. We catalogued the diverse spectrum of acutely induced clinical responses during electrical stimulation and interrogated their neural substrates using volume of tissue activated modelling, voxel-wise mapping, and supervised machine learning techniques. In total 627 acute clinical responses to stimulation-including tachycardia, hypertension, flushing, sweating, warmth, coldness, nausea, phosphenes, and fear-were recorded and catalogued across patients using standard descriptive methods. The most common manifestations during hypothalamic region stimulation were tachycardia (30.9%) and warmth (24.6%) followed by flushing (9.1%) and hypertension (6.9%). Voxel-wise mapping identified distinct, locally separable clusters for all sequelae that could be mapped to specific hypothalamic and extrahypothalamic grey and white matter structures. K-nearest neighbour classification further validated the clinico-anatomical correlates emphasizing the functional importance of identified neural substrates with area under the receiving operating characteristic curves between 0.67 and 0.91. Overall, we were able to localize acute effects of hypothalamic region stimulation to distinct tracts and nuclei within the hypothalamus and the wider diencephalon providing clinico-anatomical insights that may help to guide future neuromodulation work.
© The Author(s) (2021). Published by Oxford University Press on behalf of the Guarantors of Brain. All rights reserved. For permissions, please email: journals.permissions@oup.com.

Entities:  

Keywords:  Alzheimer’s disease; autonomic nervous system; deep brain stimulation; hypothalamus; metabolic diseases

Mesh:

Year:  2021        PMID: 33905474      PMCID: PMC8557336          DOI: 10.1093/brain/awab170

Source DB:  PubMed          Journal:  Brain        ISSN: 0006-8950            Impact factor:   13.501


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