Literature DB >> 24121088

Identifying neuropathic pain using (18)F-FDG micro-PET: a multivariate pattern analysis.

Chang-Eop Kim1, Yu Kyeong Kim2, Geehoon Chung3, Hyung Jun Im4, Dong Soo Lee5, Jun Kim1, Sang Jeong Kim6.   

Abstract

Pain is a multidimensional experience emerging from the flow of information between multiple brain regions. A growing body of evidence suggests that pathological pain causes plastic changes of various brain regions. Here, we hypothesized that the induction of neuropathic pain alters distributed patterns of the resting-state brain activity in animal models, and capturing the altered pattern would enable identification of neuropathic pain at the individual level. We acquired micro-positron emission tomography with [(18)F]fluorodeoxyglucose (FDG micro-PET) images in awake rats with spinal nerve ligation (SNL) and without (sham) (SNL group, n=13; sham group, n=10). Multivariate pattern analysis (MVPA) with linear support vector machine (SVM) successfully identified the brain with SNL (92.31% sensitivity, 90.00% specificity, and 91.30% total accuracy). Predictive brain regions with increased metabolism were mainly located in prefrontal-limbic-brainstem areas including the anterior olfactory nucleus (AON), insular cortex (IC), piriform cortex (PC), septal area (SA), basal forebrain/preoptic area (BF/POA), amygdala (AMY), hypothalamus (HT), rostral ventromedial medulla (RVM) and the ventral midbrain (VMB). In contrast, predictive regions with decreased metabolism were observed in widespread cortical areas including secondary somatosensory cortex (S2), occipital cortex (OC), temporal cortex (TC), retrosplenial cortex (RSC), and the cerebellum (CBL). We also applied the univariate approach and obtained reduced prediction performance compared to MVPA. Our results suggest that developing neuroimaging-based diagnostic tools for pathological pain can be achieved by considering patterns of the resting-state brain activity.
© 2013.

Entities:  

Keywords:  FDG micro-PET; Multivariate pattern analysis; Pain; Resting brain metabolism

Mesh:

Substances:

Year:  2013        PMID: 24121088     DOI: 10.1016/j.neuroimage.2013.10.001

Source DB:  PubMed          Journal:  Neuroimage        ISSN: 1053-8119            Impact factor:   6.556


  10 in total

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2.  Cortical astrocytes rewire somatosensory cortical circuits for peripheral neuropathic pain.

Authors:  Sun Kwang Kim; Hideaki Hayashi; Tatsuya Ishikawa; Keisuke Shibata; Eiji Shigetomi; Youichi Shinozaki; Hiroyuki Inada; Seung Eon Roh; Sang Jeong Kim; Gihyun Lee; Hyunsu Bae; Andrew J Moorhouse; Katsuhiko Mikoshiba; Yugo Fukazawa; Schuichi Koizumi; Junichi Nabekura
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3.  Gabapentin reverses central hypersensitivity and suppresses medial prefrontal cortical glucose metabolism in rats with neuropathic pain.

Authors:  Hsiao-Chun Lin; Yu-Hsin Huang; Tzu-Hao Harry Chao; Wen-Ying Lin; Wei-Zen Sun; Chen-Tung Yen
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4.  Lower Functional Connectivity of the Periaqueductal Gray Is Related to Negative Affect and Clinical Manifestations of Fibromyalgia.

Authors:  Marie-Andrée Coulombe; Keith St Lawrence; Dwight E Moulin; Patricia Morley-Forster; Mahsa Shokouhi; Warren R Nielson; Karen D Davis
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5.  The Localization Research of Brain Plasticity Changes after Brachial Plexus Pain: Sensory Regions or Cognitive Regions?

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6.  Visualization of Brain Activity in a Neuropathic Pain Model Using Quantitative Activity-Dependent Manganese Magnetic Resonance Imaging.

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Authors:  Maryam Abaei; Devi R Sagar; Elizabeth G Stockley; Clare H Spicer; Malcolm Prior; Victoria Chapman; Dorothee P Auer
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8.  Plasticity changes in forebrain activity and functional connectivity during neuropathic pain development in rats with sciatic spared nerve injury.

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9.  Acupuncture Induces Reduction in Limbic-Cortical Feedback of a Neuralgia Rat Model: A Dynamic Causal Modeling Study.

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Review 10.  Electroacupuncture suppresses glucose metabolism and GLUT-3 expression in medial prefrontal cortical in rats with neuropathic pain.

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Journal:  Biol Res       Date:  2021-08-06       Impact factor: 5.612

  10 in total

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