Showing posts with label fMRI. Show all posts
Showing posts with label fMRI. Show all posts

Thursday, November 25, 2010

Acupuncture modulates temporal neural responses in wide brain networks: evidence from fMRI study

Molecular Pain 2010, 6:73

doi:10.1186/1744-8069-6-73(Open Access)

Lijun Bai1 , Jie Tian1,2 , Chongguang Zhong1 , Ting Xue2 , Youbo you1 , Zhenyu Liu1 , Peng Chen3 , Qiyong Gong4 , Lin Ai5 , Wei Qin2 , Jianping Dai5  and Yijun Liu6,7 
Medical Image Processing Group, Institute of Automation, Chinese Academy of Sciences, Beijing 100190, China
School of Life Science and Technology, Xidian University, Xi'an 710071, China
Beijing TCM Hospital affiliated to Capital University of Medical Sciences, Beijing 10010, China
West China Hospital of Sichuan University, Sichuan 610041, China
Department of Radiology, Beijing Tiantan Hospital, Capital University of Medical Sciences, Beijing, 100050, China
McKnight Brain Institute, Departments of Psychiatry and Neuroscience, University of Florida, Gainesville, FL 32610, USA
Department of Biomedical Engineering, Peking University, Beijing 100871, China

Published:2 November 2010

Abstract

Background

Accumulating neuroimaging studies in humans have shown that acupuncture can modulate a widely distributed brain network, large portions of which are overlapped with the pain-related areas. Recently, a striking feature of acupuncture-induced analgesia is found to be associated with its long-last effect, which has a delayed onset and gradually reaches a peak even after acupuncture needling being terminated. Identifying temporal neural responses in these areas that occur at particular time -- both acute and sustained effects during acupuncture processes -- may therefore shed lights on how such peripheral inputs are conducted and mediated through the CNS. In the present study, we adopted a non-repeated event-related (NRER) fMRI paradigm and control theory based approach namely change-point analysis in order to capture the detailed temporal profile of neural responses induced by acupuncture.

Results

Our findings demonstrated that neural activities at the different stages of acupuncture presented distinct temporal patterns, in which consistently positive neural responses were found during the period of acupuncture needling while much more complex and dynamic activities found during a post-acupuncture period. These brain responses had a significant time-dependent effect which showed different onset time and duration of neural activities. The amygdala and perigenual anterior cingulate cortex (pACC), exhibited increased activities during the needling phase while decreased gradually to reach a peak below the baseline. The periaqueductal gray (PAG) and hypothalamus presented saliently intermittent activations across the whole fMRI session. Apart from the time-dependent responses, relatively persistent activities were also identified in the anterior insula and prefrontal cortices. The overall findings indicate that acupuncture may engage differential temporal neural responses as a function of time in a wide range of brain networks.

Conclusions

Our study has provided evidence supporting a view that acupuncture intervention involves complex modulations of temporal neural response, and its effect can gradually resolve as a function of time. The functional specificity of acupuncture at ST36 may involve multiple levels of differential activities of a wide range of brain networks, which are gradually enhanced even after acupuncture needle being terminated.

Wednesday, December 23, 2009

Tactile Sensory and Pain Networks in the Human Spinal Cord and Brain Stem Mapped by Means of Functional MR Imaging

American Journal of Neuroradiology
DOI 10.3174/ajnr.A1909
N.F. Ghazni, C.M. Cahill and P.W. Stroman

(From the Centre for Neuroscience Studies (N.F.G., C.M.C., P.W.S.), Departments of Pharmacology and Toxicology and Anesthesiology (C.M.C.), and Departments of Diagnostic Radiology and Physics (P.W.S.), Queen's University, Kingston, Ontario, Canada.
Please address correspondence to Patrick W. Stroman, Ph.D., Departments of Diagnostic Radiology and Physics, c/o Centre for Neuroscience Studies, 228 Botterell Hall, Queen's University, Kingston, ON, K7L 3N6, Canada; e-mail: stromanp@queensu.ca)


BACKGROUND AND PURPOSE: Touch and brush sensory stimuli elicit activity in discriminative touch pathways involving specific regions in the spinal cord and brain stem. However, no study has mapped normal sensory activity noninvasively in healthy humans. The purpose of this study is to map the neuronal activity of sensory input to understand abnormal sensory transmission.

MATERIALS AND METHODS: In the present study, spinal fMRI (by using SEEP) was used to map the activity involved with light touch (2 g and 15 g von Frey filaments) and brush stimuli in the brain stem and spinal cords of 8 healthy volunteers. The results were spatially normalized and analyzed with custom-made software. Areas of SEEP activity were identified by using general linear model analysis.

RESULTS: The 2 g von Frey filament showed predominant activity in the medulla around the ipsilateral dorsal gracile and cuneate nuclei. The 15 g filament elicited significant activity in the ipsilateral dorsal and contralateral ventral gray matter areas of the spinal cord, areas around the olivary nuclei, pontine reticular formation, periaqueductal gray, and raphe nuclei in the rostral pons and midbrain. The brush stimuli elicited more activity in the medulla around the ipsilateral cuneate and gracile nuclei.

CONCLUSIONS: The 2 g filament and brush stimuli activated areas associated with a touch response. The 15 g filament activated areas associated with a pain response. The results from this study identify specific neuronal regions in the brain stem and spinal cord involved in sensory transmission and help understand altered sensory and pain states.


Abbreviations: vGM, ventral gray matter, BOLD: Blood Oxygen Level-Dependant, dGM: dorsal grey matter, SEEP: signal intensity enhancment by extravascular protons

Full article (open access): http://www.ajnr.org/cgi/reprint/ajnr.A1909v1