TY - JOUR
T1 - Molecular connectivity studies of cerebral glucose metabolism and blood flow
T2 - A scoping review
AU - Cavaliere, Carlo
AU - Galli, Alice
AU - Meneghini, Chiara
AU - Severino, Mario
AU - Peretti, Débora Elisa
AU - Nørgaard, Martin
AU - Tang, Chunmeng
AU - Martini, Anna Lisa
AU - Bardiau, Marjorie
AU - Doyen, Matthieu
AU - Gonzalez-Escamilla, Gabriel
AU - Horwitz, Tatiana
AU - Perovnik, Matej
AU - Rullmann, Michael
AU - Talmasov, Daniel
AU - Volpi, Tommaso
AU - Xu, Zhilei
AU - Calhoun, Vince
AU - Di, Xin
AU - Eickhoff, Simon B.
AU - Habeck, Christian
AU - Jamadar, Sharna
AU - Perani, Daniela
AU - Sossi, Vesna
AU - Yakushev, Igor
AU - Sala, Arianna
AU - Pereira, Joana B.
AU - Veronese, Mattia
AU - Caminiti, Silvia Paola
N1 - Publisher Copyright:
Crown Copyright © 2026 Published by Elsevier Ltd. This is an open access article under the CC BY-NC-ND license. http://creativecommons.org/licenses/by-nc-nd/4.0/
PY - 2026/6
Y1 - 2026/6
N2 - The brain’s functional organization relies on neural, metabolic, and vascular interactions. Molecular neuroimaging offers powerful tools for assessing macroscale brain connectivity by capturing relationships between regional perfusion and glucose metabolism. This review summarizes molecular connectivity studies of cerebral blood flow (CBF) and metabolism, focusing on methodological approaches and key findings. A systematic search across MEDLINE, EMBASE, and Scopus identified studies employing radiotracers to examine brain perfusion or glucose metabolic connectivity. Data extraction focused on tracer type, connectivity methodology, population, and clinical relevance. Overall, 384 studies were included, covering healthy condition, dementia, movement disorders, psychiatric diseases, epilepsy, and disorders of consciousness. Both resting-state and task-based paradigms were identified, with perfusion studies being popular for detecting fast task-induced molecular connectivity changes. Metabolic connectivity, assessed via [18F]FDG-PET at rest, emerged as robust marker of functional integrity and disease progression, especially in neurodegenerative conditions. Multimodal PET/MRI studies revealed partial overlap between metabolic and hemodynamic connectivity. Noteworthy findings include the identification of default mode network through the study of CBF and disease-related covariance patterns in neurodegenerative disorders through the study of glucose metabolism. Integrating macroscale molecular brain organization studies with neurophysiological techniques will deepen the understanding of brain connectivity in health and disease. Additionally, total-body PET/MRI data may in the future elucidate brain–body interactions fostering a more comprehensive connectome framework.
AB - The brain’s functional organization relies on neural, metabolic, and vascular interactions. Molecular neuroimaging offers powerful tools for assessing macroscale brain connectivity by capturing relationships between regional perfusion and glucose metabolism. This review summarizes molecular connectivity studies of cerebral blood flow (CBF) and metabolism, focusing on methodological approaches and key findings. A systematic search across MEDLINE, EMBASE, and Scopus identified studies employing radiotracers to examine brain perfusion or glucose metabolic connectivity. Data extraction focused on tracer type, connectivity methodology, population, and clinical relevance. Overall, 384 studies were included, covering healthy condition, dementia, movement disorders, psychiatric diseases, epilepsy, and disorders of consciousness. Both resting-state and task-based paradigms were identified, with perfusion studies being popular for detecting fast task-induced molecular connectivity changes. Metabolic connectivity, assessed via [18F]FDG-PET at rest, emerged as robust marker of functional integrity and disease progression, especially in neurodegenerative conditions. Multimodal PET/MRI studies revealed partial overlap between metabolic and hemodynamic connectivity. Noteworthy findings include the identification of default mode network through the study of CBF and disease-related covariance patterns in neurodegenerative disorders through the study of glucose metabolism. Integrating macroscale molecular brain organization studies with neurophysiological techniques will deepen the understanding of brain connectivity in health and disease. Additionally, total-body PET/MRI data may in the future elucidate brain–body interactions fostering a more comprehensive connectome framework.
KW - Multivariate
KW - Networks
KW - Neurodegeneration
KW - Neuroimaging
KW - PET
KW - Perfusion
KW - SPECT
UR - https://www.scopus.com/pages/publications/105035509589
UR - https://www.scopus.com/pages/publications/105035509589#tab=citedBy
U2 - 10.1016/j.neubiorev.2026.106623
DO - 10.1016/j.neubiorev.2026.106623
M3 - Review article
C2 - 41794200
AN - SCOPUS:105035509589
SN - 0149-7634
VL - 185
JO - Neuroscience and Biobehavioral Reviews
JF - Neuroscience and Biobehavioral Reviews
M1 - 106623
ER -