TY - JOUR
T1 - Subthalamic nucleus shows opposite functional connectivity pattern in Huntington's and Parkinson's disease
AU - Evangelisti, Stefania
AU - Boessenkool, Sirius
AU - Patrick Pflanz, Chris
AU - Basting, Romina
AU - Betts, Jill F.
AU - Jenkinson, Mark
AU - Clare, Stuart
AU - Muhammed, Kinan
AU - LeHeron, Campbell
AU - Armstrong, Richard
AU - Klein, Johannes C.
AU - Husain, Masud
AU - Nemeth, Andrea H.
AU - Hu, Michele T.
AU - Douaud, Gwenaëlle
N1 - Funding Information:
G.D. was supported by a UK Medical Research Council Career Development Fellowship (MR/K006673/1) and a Wellcome Collaborative Award (215573/Z/19/Z); M.H. was supported by a Wellcome Principal Research Fellowship and by the National Institute for Health and Care Research Oxford Biomedical Research Centre; J.C.K. acknowledges support from the National Institute for Health and Care Research Oxford Health Clinical Research Facility; K.M. was supported by a National Institute for Health and Care Research Clinical Lectureship; C.P.P. was supported by the UK Engineering and Physical Sciences Research Council (EP/L016052/1); C.LH. was supported by a University of Oxford Christopher Welch Scholarship in Biological Sciences (GAF1415_CB2_ MSD_758342). This research was funded in whole, or in part, by the Wellcome Trust (215573/Z/19/Z). For the purpose of Open Access, the author has applied a CC BY public copyright licence to any Author Accepted Manuscript version arising from this submission. This research was also supported by the NIHR Oxford Health Biomedical Research Centre (NIHR203316). The views expressed are those of the author(s) and not necessarily those of the NIHR or the Department of Health and Social Care. The Wellcome Centre for Integrative Neuroimaging is supported by core funding from the Wellcome Trust (203139/Z/16/Z and 203139/A/16/Z).
Publisher Copyright:
© The Author(s) 2023.
PY - 2023/12/6
Y1 - 2023/12/6
N2 - Huntington's and Parkinson's disease are two movement disorders representing mainly opposite states of the basal ganglia inhibitory function. Despite being an integral part of the cortico-subcortico-cortical circuitry, the subthalamic nucleus function has been studied at the level of detail required to isolate its signal only through invasive studies in Huntington's and Parkinson's disease. Here, we tested whether the subthalamic nucleus exhibited opposite functional signatures in early Huntington's and Parkinson's disease. We included both movement disorders in the same whole-brain imaging study, and leveraged ultra-high-field 7T MRI to achieve the very fine resolution needed to investigate the smallest of the basal ganglia nuclei. Eleven of the 12 Huntington's disease carriers were recruited at a premanifest stage, while 16 of the 18 Parkinson's disease patients only exhibited unilateral motor symptoms (15 were at Stage I of Hoehn and Yahr off medication). Our group comparison interaction analyses, including 24 healthy controls, revealed a differential effect of Huntington's and Parkinson's disease on the functional connectivity at rest of the subthalamic nucleus within the sensorimotor network, i.e. an opposite effect compared with their respective age-matched healthy control groups. This differential impact in the subthalamic nucleus included an area precisely corresponding to the deep brain stimulation 'sweet spot'-the area with maximum overall efficacy-in Parkinson's disease. Importantly, the severity of deviation away from controls' resting-state values in the subthalamic nucleus was associated with the severity of motor and cognitive symptoms in both diseases, despite functional connectivity going in opposite directions in each disorder. We also observed an altered, opposite impact of Huntington's and Parkinson's disease on functional connectivity within the sensorimotor cortex, once again with relevant associations with clinical symptoms. The high resolution offered by the 7T scanner has thus made it possible to explore the complex interplay between the disease effects and their contribution on the subthalamic nucleus, and sensorimotor cortex. Taken altogether, these findings reveal for the first time non-invasively in humans a differential, clinically meaningful impact of the pathophysiological process of these two movement disorders on the overall sensorimotor functional connection of the subthalamic nucleus and sensorimotor cortex.
AB - Huntington's and Parkinson's disease are two movement disorders representing mainly opposite states of the basal ganglia inhibitory function. Despite being an integral part of the cortico-subcortico-cortical circuitry, the subthalamic nucleus function has been studied at the level of detail required to isolate its signal only through invasive studies in Huntington's and Parkinson's disease. Here, we tested whether the subthalamic nucleus exhibited opposite functional signatures in early Huntington's and Parkinson's disease. We included both movement disorders in the same whole-brain imaging study, and leveraged ultra-high-field 7T MRI to achieve the very fine resolution needed to investigate the smallest of the basal ganglia nuclei. Eleven of the 12 Huntington's disease carriers were recruited at a premanifest stage, while 16 of the 18 Parkinson's disease patients only exhibited unilateral motor symptoms (15 were at Stage I of Hoehn and Yahr off medication). Our group comparison interaction analyses, including 24 healthy controls, revealed a differential effect of Huntington's and Parkinson's disease on the functional connectivity at rest of the subthalamic nucleus within the sensorimotor network, i.e. an opposite effect compared with their respective age-matched healthy control groups. This differential impact in the subthalamic nucleus included an area precisely corresponding to the deep brain stimulation 'sweet spot'-the area with maximum overall efficacy-in Parkinson's disease. Importantly, the severity of deviation away from controls' resting-state values in the subthalamic nucleus was associated with the severity of motor and cognitive symptoms in both diseases, despite functional connectivity going in opposite directions in each disorder. We also observed an altered, opposite impact of Huntington's and Parkinson's disease on functional connectivity within the sensorimotor cortex, once again with relevant associations with clinical symptoms. The high resolution offered by the 7T scanner has thus made it possible to explore the complex interplay between the disease effects and their contribution on the subthalamic nucleus, and sensorimotor cortex. Taken altogether, these findings reveal for the first time non-invasively in humans a differential, clinically meaningful impact of the pathophysiological process of these two movement disorders on the overall sensorimotor functional connection of the subthalamic nucleus and sensorimotor cortex.
KW - Huntington's
KW - Parkinson's
KW - differential effect
KW - functional connectivity
KW - subthalamic nucleus
UR - https://www.scopus.com/pages/publications/85179479394
U2 - 10.1093/braincomms/fcad282
DO - 10.1093/braincomms/fcad282
M3 - Article
AN - SCOPUS:85179479394
SN - 2632-1297
VL - 5
JO - Brain Communications
JF - Brain Communications
IS - 6
M1 - fcad282
ER -