<?xml version="1.0" encoding="UTF-8"?><!DOCTYPE article  PUBLIC "-//NLM//DTD Journal Publishing DTD v3.0 20080202//EN" "http://dtd.nlm.nih.gov/publishing/3.0/journalpublishing3.dtd"><article xmlns:mml="http://www.w3.org/1998/Math/MathML" xmlns:xlink="http://www.w3.org/1999/xlink" dtd-version="3.0" xml:lang="en" article-type="research article"><front><journal-meta><journal-id journal-id-type="publisher-id">JBBS</journal-id><journal-title-group><journal-title>Journal of Behavioral and Brain Science</journal-title></journal-title-group><issn pub-type="epub">2160-5866</issn><publisher><publisher-name>Scientific Research Publishing</publisher-name></publisher></journal-meta><article-meta><article-id pub-id-type="doi">10.4236/jbbs.2017.713044</article-id><article-id pub-id-type="publisher-id">JBBS-80931</article-id><article-categories><subj-group subj-group-type="heading"><subject>Articles</subject></subj-group><subj-group subj-group-type="Discipline-v2"><subject>Biomedical&amp;Life Sciences</subject><subject> Medicine&amp;Healthcare</subject></subj-group></article-categories><title-group><article-title>
 
 
  Changes in the Brain’s Intrinsic Organization in the Resting State with Real-Time fMRI Neurofeedback Training of Posterior Cingulate Cortex Activity
 
</article-title></title-group><contrib-group><contrib contrib-type="author" xlink:type="simple"><name name-style="western"><surname>Yubao</surname><given-names>Wang</given-names></name><xref ref-type="aff" rid="aff1"><sup>1</sup></xref></contrib><contrib contrib-type="author" xlink:type="simple"><name name-style="western"><surname>Jipeng</surname><given-names>Zhang</given-names></name><xref ref-type="aff" rid="aff2"><sup>2</sup></xref></contrib><contrib contrib-type="author" xlink:type="simple"><name name-style="western"><surname>Gaoyan</surname><given-names>Zhang</given-names></name><xref ref-type="aff" rid="aff3"><sup>3</sup></xref></contrib><contrib contrib-type="author" xlink:type="simple"><name name-style="western"><surname>Li</surname><given-names>Yao</given-names></name><xref ref-type="aff" rid="aff1"><sup>1</sup></xref></contrib><contrib contrib-type="author" xlink:type="simple"><name name-style="western"><surname>Zhiying</surname><given-names>Long</given-names></name><xref ref-type="aff" rid="aff1"><sup>1</sup></xref><xref ref-type="corresp" rid="cor1"><sup>*</sup></xref></contrib></contrib-group><aff id="aff3"><addr-line>School of Computer Science and Technology, Tianjin Key Laboratory of Cognitive Computing and Application, Tianjin University, Tianjin, China</addr-line></aff><aff id="aff2"><addr-line>College of Information Science and Technology, Beijing Normal University, Beijing, China</addr-line></aff><aff id="aff1"><addr-line>State Key Laboratory of Cognitive Neuroscience and Learning &amp;amp; IDG/McGovern Institute for Brain Research, Beijing Normal University, Beijing, China</addr-line></aff><author-notes><corresp id="cor1">* E-mail:<email>friskying@163.com(ZL)</email>;</corresp></author-notes><pub-date pub-type="epub"><day>07</day><month>12</month><year>2017</year></pub-date><volume>07</volume><issue>13</issue><fpage>655</fpage><lpage>673</lpage><history><date date-type="received"><day>6,</day>	<month>September</month>	<year>2017</year></date><date date-type="rev-recd"><day>4,</day>	<month>December</month>	<year>2017</year>	</date><date date-type="accepted"><day>8,</day>	<month>December</month>	<year>2017</year></date></history><permissions><copyright-statement>&#169; Copyright  2014 by authors and Scientific Research Publishing Inc. </copyright-statement><copyright-year>2014</copyright-year><license><license-p>This work is licensed under the Creative Commons Attribution International License (CC BY). http://creativecommons.org/licenses/by/4.0/</license-p></license></permissions><abstract><p>
 
 
  Real-time functional magnetic resonance imaging (rtfMRI) technology has been widely used to train subjects to actively regulate the activity of specific brain regions. Although many previous studies have demonstrated that neurofeedback training alters the functional connectivity between brain regions in the task state and resting state, it is unclear how the regulation of the key hub of the default mode network (DMN) affects the topological properties of the resting-state brain network. The current study aimed to investigate what topological changes would occur in the large-scale intrinsic organization of the resting state after the real-time down-regulation of the posterior cingulate cortex (PCC). The results indicated that the down-regulation of the PCC in the DMN reduced the functional connectivity of the PCC with the nodes outside of the DMN and reduced functional connectivity between the superior medial frontal gyrus (SFGmed) and parahippocampal gyrus (PHG) in the experimental group. Moreover, the nodal graph properties of the SFGmed were reduced, while that of the PHG showed the opposite alteration after the down-regulation of the PCC. These findings possibly suggest that the regulation of the key hub of the DMN, the PCC, mainly changed the information transfer of the SFGmed and PHG.
 
</p></abstract><kwd-group><kwd>Real-Time fMRI</kwd><kwd> Neurofeedback</kwd><kwd> Default Mode Network</kwd><kwd> Posterior Cingulate Cortex</kwd><kwd> Graph Theory</kwd></kwd-group></article-meta></front><body><sec id="s1"><title>1. Introduction</title><p>Functional magnetic resonance imaging (fMRI) is a noninvasive technique that can be used to assess brain function by measuring blood-oxygen-level-depen- dent signal changes [<xref ref-type="bibr" rid="scirp.80931-ref1">1</xref>] . By far, task-based and resting-state fMRI are the two most popular paradigms to investigate brain function. Task-based fMRI paradigms are generally used to reveal differentiated involvement of brain regions by comparing the experimental condition with the “rest” condition. However, it was noted that the brain is not idle at “rest” but rather produces spontaneous intrinsicactivity that is highly correlated between multiple brain regions [<xref ref-type="bibr" rid="scirp.80931-ref2">2</xref>] . Especially in recent years, resting-state fMRI (RS-fMRI) has attracted an increasing amount of attention to investigate synchronous activity between brain regions and identify resting-state networks [<xref ref-type="bibr" rid="scirp.80931-ref3">3</xref>] .</p><p>Resting-state functional connectivity (RSFC) research has revealed a number of consistent resting networks that represent specific patterns of synchronous activity from healthy subjects [<xref ref-type="bibr" rid="scirp.80931-ref4">4</xref>] . Moreover, the RSFC in the human brain is dynamic. Previous studies have demonstrated that the RSFC can be altered by development, aging [<xref ref-type="bibr" rid="scirp.80931-ref5">5</xref>] , or neurologic and psychiatric brain disorders that include schizophrenia, Alzheimer’s disease, dementia and depression [<xref ref-type="bibr" rid="scirp.80931-ref6">6</xref>] . Furthermore, some studies have reported that the RSFC can be modulated by offline learning-related training [<xref ref-type="bibr" rid="scirp.80931-ref7">7</xref>] [<xref ref-type="bibr" rid="scirp.80931-ref8">8</xref>] . These studies suggest that the RSFC is alterable and can be affected by appropriate training. Thus, the dynamic characteristics of the RSFC are important for us to explore the functional stability and flexibility of the brain.</p><p>Recently, real-time functional magnetic resonance imaging (rtfMRI) technology has been used to train subjects to actively control their brain activity [<xref ref-type="bibr" rid="scirp.80931-ref9">9</xref>] . The self-regulation of brain activity can lead to changes in functional connectivity during the task state. Several studies have demonstrated that functional connectivity of the task fMRI can be altered by neurofeedback training through real-time modulation of the activity of the premotor area, visual cortex, amygdala, insular cortex and primary auditory cortex [<xref ref-type="bibr" rid="scirp.80931-ref10">10</xref>] , etc. Moreover, rtfMR Ineurofeedback training can also change the functional connectivity during the resting state. Hampson et al. [<xref ref-type="bibr" rid="scirp.80931-ref11">11</xref>] reported that the RSFC of the supplementary motor area with the left striatum and right thalamus during the resting state was significantly reduced after real-time modulation of the activity of the supplementary motor area. Scheinost et al. [<xref ref-type="bibr" rid="scirp.80931-ref12">12</xref>] found that orbitofrontal cortex neurofeedback produced lasting changes in the RSFC in limbic circuitry and the dorsolateral prefrontal cortex. Yuan et al. [<xref ref-type="bibr" rid="scirp.80931-ref13">13</xref>] observed that the RSFC of the amygdala with the right parahippocampalgyrus, right superior temporal gyrus, bilateral middlefrontal gyrus and right lingual gyrus was significantly changed through real-time modulation of the activity of amygdala. Megumi et al. [<xref ref-type="bibr" rid="scirp.80931-ref14">14</xref>] reported that the RSFC of the regions of the default mode network (DMN) with the regions of the motor/visuospatial network was significantly increased by real-time regulation of connectivity between two regions. Moreover, it was demonstrated that the neurofeeback training on connectivity between two regions could induce long-lasting changes in intrinsic functional network [<xref ref-type="bibr" rid="scirp.80931-ref14">14</xref>] . Although these studies suggest that neurofeedback training induces changes in RSFC, it is not clear how the intrinsic organization of the brain in the resting state changes after neurofeedback training. Especially, it is unknown how neurofeedback of the key hub of the DMN alters the intrinsic organization of the brain in the resting state.</p><p>In our previous study, the down-regulation of the activity of the PCC was demonstrated to alter the activity of the DMN in the resting state using the rtfMRI technique and the Independent Component Analysis (ICA) method [<xref ref-type="bibr" rid="scirp.80931-ref15">15</xref>] . The ICA method is generally used to reveal the pattern of functionally connected brain networks but cannot reveal how the nodes within a brain network interact with each other. Thus, it is unknown what changes would occur in the intrinsic organizational mechanism of the brain underlying the relevant networks through the down-regulation of the activity in the PCC. Based on our previous study, this study aimed to further investigate the topological alterations of the intrinsic organization of the brain during the resting state after real-time neurofeedback training in terms of: 1) the small-world configuration and 2) the global DMN topography and nodal properties. In contrast to ICA, the graph-based network analyses can not only provide the visualization of the overall connectivity pattern among all of the elements of the brain regions but also quantitatively characterize the global organization [<xref ref-type="bibr" rid="scirp.80931-ref16">16</xref>] . Therefore, the graph theory method was used in this study to identify changes in the topological properties of the brain functional network during the resting state after real-time neurofeedback training. The RS-fMRI data of 16 subjects in the experimental group before and after real-time neurofeedback training were acquired. Moreover, the RS-fMRI data of16 subjects in the control group that underwent the same task but without neurofeedback during the training were also collected. We hypothesized that the regulation of the PCC could result in the topological alteration of the key nodes and the alteration of connectivity between the key nodes of the DMN.</p></sec><sec id="s2"><title>2. Material and Methods</title><p>The data used in this study were collected in our previous study [<xref ref-type="bibr" rid="scirp.80931-ref15">15</xref>] . For readability, the main information about the subjects, experimental procedure and scanning parameters are repeated here.</p><sec id="s2_1"><title>2.1. Participants</title><p>Thirty-two healthy right-handed individuals with normal vision participated in the experiment. The experimental group included eight females and eight males (age: 21.00 &#177; 2.00 years) and the control group included eight females and eight males (age: 21.60 &#177; 2.00 years). The two groups had no significant difference in age (p = 0.18). All participants agreed to sign informed consent before scanning.</p></sec><sec id="s2_2"><title>2.2. Imaging Parameters</title><p>The brain scans were performed at the MRI Center of Beijing Normal University using a 3.0-T Siemens whole-body MRI scanner. A single-shot T2 -weighted gradient-echo, EPI sequence was used for functional imaging acquisition with the following parameters: TR/TE/flip angle = 2000 ms/30 ms/90˚, matrix = 64 &#215; 64, in-plane resolution = 3.125 &#215; 3.125 mm<sup>2</sup>, slice = 33, slice thickness = 4 mm, and slice gap = 0.6 mm.</p></sec><sec id="s2_3"><title>2.3. Experimental Procedure</title><p>The whole experiment included a task familiarization exercise, a pre-training resting run, a region of interest (ROI) localizer run, two training runs, a post-training resting run and a questionnaire interview outside of the scanner. Our previous study demonstrated that the task of moving and imaging the right fingers according to the sequence 4-2-3-1-3-4-2 can make the region in PCC deactivated stably [<xref ref-type="bibr" rid="scirp.80931-ref17">17</xref>] . In order to identify the reliable PCC and down-regulate PCC effectively, the same finger tapping task was used to locate the PCC ROI and the finger imagination strategy was used during the neurofeedback training runs.</p><sec id="s2_3_1"><title>2.3.1. Task Familiarization Exercise</title><p>In the task familiarization exercise, all subjects were told that the four fingers of their right hand from their index to little finger represented one, two, three, and four, respectively. Then, they were required to perform a right-hand finger movement for 30-s according to the sequence 1-2-3-4 with a metronome set to 4 Hz and imagine the movement of the right fingers for 30 s according to the sequence 1-2-3-4 without a metronome.</p></sec><sec id="s2_3_2"><title>2.3.2. Pre-Training Resting Run</title><p>All subjects were instructed to remain still for 10 min with eyesclosed in this run.</p></sec><sec id="s2_3_3"><title>2.3.3. ROI Localizer Run</title><p>The 3.5-min localizer run consisted of three 30-s task blocks alternating with four 30-s rest blocks. During the task blocks, subjects performed the right-hand finger movement according to a new sequence4-2-3-1-3-4-2 at 4 Hz without a metronome. The ROI was selected as a rectangular zone in one slice centered on the area of deactivation of the PCC. The volume and location of the ROI varied across subjects (mean volume: 15.90 &#177; 3.20; mean slice: 13.20 &#177; 0.80). The volume represented the number of voxels in the ROI.</p></sec><sec id="s2_3_4"><title>2.3.4. Two Neurofeedback Training Runs</title><p>Each training run lasted 782 s and consisted of eight 46-s task blocks alternating with nine 46-s rest blocks. The neurofeedback presented to the subjects was a continuously updated time course averaged across the voxels in the ROI. All subjects in the experimental group were required to lower the activity in the ROI during the task blocks and maximizing the difference between the activity of the ROI during the rest and task blocks. Apart from imagining, subjects were instructed to imagine the movement of the right fingers according to the sequence 4-2-3-1-3-4-2 with varied speed, strength and the mode of the movement during the imagery task. During the rest blocks, subjects were required to rest and not recall anything about the regulation. The subjects in the control group were required to imagine movements of the right fingers according to the sequence 4-2-3-1-3-4-2 without neurofeedback signal during the task blocks.</p></sec><sec id="s2_3_5"><title>2.3.5. Post-Training Resting Run</title><p>All subjects were asked to stay relaxed with eyes closed during the 10-min post-training resting run.</p></sec><sec id="s2_3_6"><title>2.3.6. Questionnaire Interview</title><p>After the scan, a questionnaire was filled out by each subject. The questionnaire mainly addressed whether the subjects performed the tasks according to the experimenter’s instruction, the detailed strategies they used to regulate the activity and any difficulties they encountered during the experiment.</p></sec></sec><sec id="s2_4"><title>2.4. Data Analyses</title><p>For the pre-training and post-training resting data of each subject, the preprocessing, brain network construction and the calculation of global network parameters and regional nodal parameters were performed using graph theoretical network analysis software (GRETNA, http://www.nitrc.org/projects/gretna).</p><sec id="s2_4_1"><title>2.4.1. Preprocessing</title><p>The preprocessing steps included removal of the first 10 volumes, slice timing correction, head movement correction, spatial normalization (EPI template provided by the Montreal Neurological Institute, MNI, with a final resolution of 3 &#215; 3 &#215; 3 mm), removal of linear trend, temporal band-pass filtering (0.01 - 0.08 Hz) and nuisance signal regression (6 head motion parameters, the cerebrospinal fluid signal and the white matter signals). Two subjects in the experimental group were eliminated because the target ROI could not be defined. In addition, two subjects in the experimental group and four in the control group were further removed from the analysis because the translation of head movement was larger than one voxel during training. As a result, a total of 24 subjects consisting of 12 in the experimental group and 12 in the control group underwent the subsequent brain network analysis.</p></sec><sec id="s2_4_2"><title>2.4.2. Construction of Large-Scale Brain Functional Networks</title><p>Each participant’s brain was parceled into 90 cortical and subcortical regions using the AAL atlas. Then, the time series of each ROI was acquired by averaging the signals of all voxels within each ROI region. Pearson’s correlation coefficients of time series between any pair of brain regions were calculated, and a Fisher’s r-to-z transformation [<xref ref-type="bibr" rid="scirp.80931-ref18">18</xref>] was applied to improve the normality of the correlation coefficients. For each resting run of each subject, a temporal correlation matrix (90 &#215; 90) was obtained. A sparsity threshold was used to threshold each correlation matrix into a binarized matrix to ensure that the brain networks corresponding to each subject had the same number of edges. Sparsity is defined as the ratio of the number of actual edges divided by the maximum possible number of edges in a network. The positive value of the Fisher Z-score was employed for sparsity thresholding. We set a series of sparsity threshold values in a range of 0.1 - 0.5 at intervals of 0.01 to allow prominent small-world properties in brain networks to be observed [<xref ref-type="bibr" rid="scirp.80931-ref19">19</xref>] . The undirected binarized graphs of the brain were obtained with the nodes representing brainregions and the edges representing functional relationships between brain regions.</p></sec><sec id="s2_4_3"><title>2.4.3. Network Analysis</title><p>The network analysis, including the global network parameters and regional nodal parameters, was performed in the large-scale brain functional networks.</p><p>Global network parameters. Graph theory has been widely used to quantitatively characterize the brain functional networks [<xref ref-type="bibr" rid="scirp.80931-ref20">20</xref>] . In this study, six global network parameters that included four small-world parameters (clustering coefficient C p , characteristic path length L p , normalized clustering coefficient γ , and normalized shortest path length λ ) and two efficiency parameters (global efficiency E g l o b and local efficiency E l o c ) were used to characterize the global topological organization of brain networks. Their formula definitions in a graph G with N nodes are listed below [<xref ref-type="bibr" rid="scirp.80931-ref21">21</xref>] [<xref ref-type="bibr" rid="scirp.80931-ref22">22</xref>] ,</p><p>C p = 1 N ∑ i ∈ G K i D n o d ( i ) ( D n o d ( i ) − 1 ) / 2 (1)</p><p>where N is the number of all nodes of a network G, D n o d ( i ) is the degree of node i, and K i is the number of edges in the subgraph G i that consists of the neighbors of node i. C p measures the local cliquishness of a network G,</p><p>L p = 1 1 N ( N − 1 ) ( ∑ j ≠ i ∈ G 1 L i j ) (2)</p><p>where L i j denotes the shortest path length between nodes i and j. L p measures the overall routing efficiency of a network G.</p><p>E g l o b = 1 N ( N − 1 ) ∑ j ≠ i ∈ G 1 L i j (3)</p><p>E g l o b measures the extent of information propagation through the whole network.</p><p>E l o c = 1 N ∑ i ∈ G E g l o b ( i ) (4)</p><p>E l o c measures the capability of parallel information transfer in the local scope of a network.</p><p>To examine the small-world properties, the normalized clustering coefficient γ = C p r e a l / C p r a n d and the normalized shortest pathlength λ = L p r e a l / L p r a n d were computed [<xref ref-type="bibr" rid="scirp.80931-ref23">23</xref>] . C p r e a l and L p r e a l are the clustering coefficient and the shortest pathlength of real networks, respectively. C p r a n d and L p r a n d represent the mean indices derived from matched random networks (100matched random networks that preserved the same number of nodes, edges, and degree distribution as the real networks were selected) [<xref ref-type="bibr" rid="scirp.80931-ref24">24</xref>] . Typically, a small-world network should meet the following criteria: γ &gt; 1 and λ ≈ 1 [<xref ref-type="bibr" rid="scirp.80931-ref23">23</xref>] , or σ = γ / λ &gt; 1 [<xref ref-type="bibr" rid="scirp.80931-ref25">25</xref>] .</p><p>Regional nodal parameters of DMN nodes. Among the various resting networks, the DMN is a prominent one that reflects a default state of neuronal activity of the human brain. Moreover, the PCC that was down-regulated during neurofeedback training was a key hub in the DMN [<xref ref-type="bibr" rid="scirp.80931-ref26">26</xref>] . Thus, this study focused on investigating the regional nodal parameters of the DMN nodes. In the present study, three nodal parameters that included degree ( D n o d ), nodal efficiency ( E n o d ), and betweenness centrality (BC) were used to examine the regional characteristics of brain network. The following are their formula definitions in a graph G with N nodes [<xref ref-type="bibr" rid="scirp.80931-ref27">27</xref>] [<xref ref-type="bibr" rid="scirp.80931-ref28">28</xref>] :</p><p>D n o d ( i ) = ∑ j ≠ i ∈ G e i j (5)</p><p>where e i j is the (i, j)th element in the formerly obtained binarized correlation matrix. D n o d ( i ) measures the connectivity of node i with the rest of the nodes in a network.</p><p>E n o d ( i ) = 1 N − 1 ∑ j ≠ i ∈ G 1 L i j (6)</p><p>E n o d ( i ) measures the ability of information transmission of node i in the network.</p><p>B C ( i ) = ∑ j ≠ i ≠ k ∈ G δ j k ( i ) δ j k (7)</p><p>δ j k is the number of the shortest paths from node j to node k, and δ j k ( i ) is the number of the shortest paths from node j to node k that passes through node i within the network G. B C ( i ) measures the influence of node i over information flow between other nodes in the brain network. Moreover, the nodal characteristics of the brain networks measure the extent to which a given node connects to all other nodes of a network, which may indicate the importance of special brain areas in the brain network [<xref ref-type="bibr" rid="scirp.80931-ref27">27</xref>] .</p></sec><sec id="s2_4_4"><title>2.4.4. Extraction of the Global DMN Topography</title><p>In the present work, the DMN regions were determined from the AAL-at-a- sprimarily according to the coordinates of the peak foci of all the “task-negative” regions [<xref ref-type="bibr" rid="scirp.80931-ref29">29</xref>] . The ROIs in the AAL-atlas which covered the coordinates or the most adjacent ones were selected. Two coordinates (−3, 39, −2) and (1, 54, 21) were close to the inter-hemisphere locations between the left and right homogeneous regions, so the corresponding bilateral AAL-atlas regions were also selected. Last, the peak coordinate (−2, −36, 37) is near the boundary between cingulum_Mid_L and cingulum_Post_L, but the great part ofthe left PCC in Fox et al. (2005) is involved in cingulum_Post_L, so we selected cingulum_Post_L as the corresponding left PCC. Totally fourteen regions were selected as the AAL-based DMN components (see <xref ref-type="table" rid="table1">Table 1</xref>). For each resting run of each subject, a correlation sub-matrix representing the global DMN topography was extracted from the 90 &#215; 90 global correlation matrix with the Fisher’s r-to-z transformation. The global DMN topography included the pairwise functional connectivity between the fourteen DMN regions (the intra-DMN functional connectivity) and that between the DMN regions and non-DMN regions (the extra-DMN functional connectivity).</p></sec><sec id="s2_4_5"><title>2.4.5. Statistical Analysis</title><p>For each of the global network parameters and regional nodal parameters over the sparsity range of 0.1 - 0.5, a two-way repeated-measures analysis of variance (ANOVA) using group (experimental group and control group) as a between- subject factor and state (pre-training and post-training) as a repeated-measures factor was conducted in SPSS 20.0. Moreover, the same two-way repeated-mea- sures ANOVA was performed on each functional connectivity of the global DMN topography. If any parameter showed a significant interaction effect (p &lt; 0.05), tests of simple effect were further carried out and were corrected by the false discovery rate (FDR) method [<xref ref-type="bibr" rid="scirp.80931-ref30">30</xref>] to examine the differences between the pre-training and post-training resting states in each group.</p></sec></sec></sec><sec id="s3"><title>3. Result</title><sec id="s3_1"><title>3.1. Stability of the Small-World and Global Network Parameters under the Four Conditions</title><p><xref ref-type="fig" rid="fig1">Figure 1</xref> shows the small-world properties of the functional organization of the brain in the pre-training and post-training resting states for both groups. It can be seen that over the sparsity range of 0.1 - 0.5, γ was larger than 1, and λ ap-</p><table-wrap id="table1" ><label><xref ref-type="table" rid="table1">Table 1</xref></label><caption><title> DMN components (Fox et al., 2005) defined in the AAL-atlas</title></caption><table><tbody><thead><tr><th align="center" valign="middle" >Regions of interest in the AAL</th><th align="center" valign="middle" >Talairach coordinates (x, y, z)</th><th align="center" valign="middle" >Common names</th></tr></thead><tr><td align="center" valign="middle" >Frontal_Sup_L</td><td align="center" valign="middle" >(−14, 38, 52)</td><td align="center" valign="middle"  rowspan="2"  >Superior frontal gyrus, dorsolateral</td></tr><tr><td align="center" valign="middle" >Frontal_Sup_R</td><td align="center" valign="middle" >(17, 37, 52)</td></tr><tr><td align="center" valign="middle" >Frontal_Sup_Medial_L</td><td align="center" valign="middle" >(-5, 49, 31)</td><td align="center" valign="middle"  rowspan="2"  >Superior frontal gyrus, medial</td></tr><tr><td align="center" valign="middle" >Frontal_Sup_Medial_R</td><td align="center" valign="middle" >(9,50,30)</td></tr><tr><td align="center" valign="middle" >Cingulum_Ant_L</td><td align="center" valign="middle" >(−3, 39, −2)</td><td align="center" valign="middle"  rowspan="2"  >Anterior cingulate and paracingulate gyri</td></tr><tr><td align="center" valign="middle" >Cingulum_Ant_R</td><td align="center" valign="middle" >(8,37,15)</td></tr><tr><td align="center" valign="middle" >Cingulum_Post_L</td><td align="center" valign="middle" >(−2, −36, 37)</td><td align="center" valign="middle"  rowspan="2"  >Posterior cingulate gyrus</td></tr><tr><td align="center" valign="middle" >Cingulum_Post_R</td><td align="center" valign="middle" >(3, −51, 8)</td></tr><tr><td align="center" valign="middle" >ParaHippocampal_L</td><td align="center" valign="middle" >(−22, −26, −16)</td><td align="center" valign="middle"  rowspan="2"  >Parahippocampal gyrus</td></tr><tr><td align="center" valign="middle" >ParaHippocampal_R</td><td align="center" valign="middle" >(25, −26, −14)</td></tr><tr><td align="center" valign="middle" >Angular_L</td><td align="center" valign="middle" >(−47, −67, 36)</td><td align="center" valign="middle"  rowspan="2"  >Angular</td></tr><tr><td align="center" valign="middle" >Angular_R</td><td align="center" valign="middle" >(53, −67, 36)</td></tr><tr><td align="center" valign="middle" >Temporal_Mid_R</td><td align="center" valign="middle" >(65, −17, −15)</td><td align="center" valign="middle" >Middle temporal gyrus</td></tr><tr><td align="center" valign="middle" >Temporal_Inf_L</td><td align="center" valign="middle" >(−61, −33, −15)</td><td align="center" valign="middle" >Inferior temporal gyrus</td></tr></tbody></table></table-wrap><p>proached 1 for the pre-training and post-training resting states of each group (see Figures 1(a)-(d)). According to Watts and Strogatz (1998), all four sets of networks exhibited small-worldness (γ &gt; 1 and λ ≈ 1) in the range of 0.1 ≤ sparsity ≤ 0.5. From the efficiency perspective, the local efficiencies of these networks were larger than the matched random networks ( E l o c / E l o c − r a n d &gt; 1 ), whereas the global efficiencies of these networks approached that of the matched random networks ( E g l o b / E g l o b − r a n d ≈ 1 ) (see <xref ref-type="fig" rid="fig1">Figure 1</xref>(e)-(h)). Thus, these results demonstrated the small-world configurations in the functional network of the brain under the four conditions (2 groups &#215; 2 states). Moreover, two-way repeated- measures ANOVA did not reveal a significant interaction between group and state on any of the six global parameters of the brain functional network (p &gt; 0.1).</p></sec><sec id="s3_2"><title>3.2. Results of the DMN Nodal Graph Properties</title><p>The degree, nodal efficiency and betweenness centrality of the SFGmed. L/R, the betweenness centrality of the cingulum_Post_L (PCC.L), the nodal efficiency and betweenness centrality of the cingulum_Post_R (PCC.R) and the betweenness centrality of the PHG.R showed a significant interaction effect (p &lt; 0.05) within some ranges of sparsity levels. <xref ref-type="fig" rid="fig2">Figure 2</xref> and <xref ref-type="fig" rid="fig3">Figure 3</xref> show the variation</p><p>of the parameters that showed a significant interaction effect with the sparsity level. For the post-training versus the pre-training resting run, the experimental group showed a significant decrease in the degree, nodal efficiency and betweenness centrality of the SFGmed. L/R (see Figures 2(a)-(f)), in the betweenness centrality of the PCC.L, and in the nodal efficiency and betweenness centrality of the PCC.R (see Figures 3(a)-(c)) within some ranges of sparsity levels (FDR-corrected p &lt; 0.05). Moreover, the experimental group produced significantly higher betweenness centrality of the PHG.R (see <xref ref-type="fig" rid="fig3">Figure 3</xref>(d)) for the post-training than the pre-training resting run within some ranges of sparsity levels (FDR-corrected p &lt; 0.05). The control group did not show any significant changes in DMN nodal graph properties after the training runs.</p><p>Importantly, we further divided the degree of each DMN node into two parts, including the intra-DMN degree and extra-DMN degree. The intra-DMN degree of a DMN node is defined as the number of edges that connect the node with the other nodes within the DMN. The extra-DMN degree of a DMN node is defined as the number of edges that connect the node with the other nodes outside of the DMN. A two-way repeated-measures ANOVA using group as a between-subject factor and state as a repeated-measures factor revealed that the intra-DMN degree of the SFGmed. L/R, the extra-DMN degree of the PCC.R and the extra-DMN degree of the PHG.R displayed significant interaction effect within some ranges of sparsity levels (p &lt; 0.05). The variations of the intra-DMN degree of the SFGmed. L/R, the extra-DMN degree of the PCC.R and PHG.R with the sparsity level are presented in <xref ref-type="fig" rid="fig4">Figure 4</xref>. The simple effect analysis further revealed that the intra-DMN degree of the SFGmed. L/R and PHG.R and the extra-DMN degree of the PCC.R were significantly lower, and the extra-DMN degree of the PHG.R was significantly higher in the post-training resting run of the experimental group than in the pre-training resting run (FDR-corrected p &lt; 0.05). The DMN nodes of the control group did not produce any significant changes in the intra-DMN and extra-DMN degree.</p></sec><sec id="s3_3"><title>3.3. Results of the Global DMN Topography</title><p>For each functional connectivity, a two-way repeated-measures ANOVA using group (experimental group and control group) as a between-subject factor and state (pre-training and post-training) as a repeated-measures factor was con- ducted in SPSS 20.0. If any functional connectivity showed a significant interac-</p><p>tion effect (p &lt; 0.05), tests of simple effect were further carried out and were corrected by the false discovery rate (FDR) method to examine the differences between the pre-training and post-training resting states in each group. The differences of the global DMN topography between the two resting runs of each group are shown in <xref ref-type="fig" rid="fig5">Figure 5</xref>. The functional connectivity that showed a significant interaction between the state and the group are colored in <xref ref-type="fig" rid="fig5">Figure 5</xref>. For the post-training versus pre-training run, the intra-DMN functional connectivity between the SFGmed. L and PHG.L, connectivity between the SFGmed. R and PHG.L and connectivity between the SFGmed. R and PHG.R were significantly decreased in the experimental group (see <xref ref-type="fig" rid="fig5">Figure 5</xref>(a)). For the extra-DMN functional connectivity, significant changes of the experimental group mainly occurred in the connectivity between the SFGmed/ Anterior cingulate/PHG/An- gular and the regions outside of the DMN. In contrast, the control group did not show significant alteration of the intra-DMN functional connectivity and showed some significant alterations of the extra-DMN functional connectivity.</p></sec></sec><sec id="s4"><title>4. Discussion</title><p>In the present study, we utilized the rtfMRI technique and graph theory analysis method to investigate neurofeedback training-related changes in the topological</p><p>properties of brain functional networks of the resting state. The main findings are as follows: 1) The brain network exhibited prominent small-world properties that cannot be changed by neurofeedback training; 2) The down-regulation of the PCC significantly reduced the functional connectivity between the SFGmed and PHG of the experimental group; and 3) the down-regulation of the PCC resulted in significant reductions in the nodal parameters of the SFGmed and PCC and significant increases in the nodal parameters of the PHG.</p><sec id="s4_1"><title>4.1. Small-Worldness of the Whole Brain Network</title><p>In this study, the whole brain network showed small-world properties during the pre-training and post-training resting run (see <xref ref-type="fig" rid="fig1">Figure 1</xref>), which is consistent with previous studies’ findings that the human brain networks are small world (for reviews, see [<xref ref-type="bibr" rid="scirp.80931-ref31">31</xref>] [<xref ref-type="bibr" rid="scirp.80931-ref32">32</xref>] ). The small-world mode indicates that the architecture of the networks contains dense local clustering between neighboring nodes and a short path length between any (distant) pair of nodes that have relatively few long-range connections [<xref ref-type="bibr" rid="scirp.80931-ref32">32</xref>] . The unchanged small-world properties after neurofeedback training further suggest that the functional organization of the brain maintained stable, robust and efficient small-world attributes for its internal complicated information processing. Moreover, the small-world organization also reflects an optimal balance between the global integration and local specialization of parallel information processing [<xref ref-type="bibr" rid="scirp.80931-ref32">32</xref>] [<xref ref-type="bibr" rid="scirp.80931-ref33">33</xref>] . Our results indicated that real-time training could not break the balance between the local specialization and global integration.</p></sec><sec id="s4_2"><title>4.2. Training-Related Alterations of the Nodal Graph Properties</title><p>Our previous study demonstrated that most subjects in the experimental group can successfully reduce the activity of the PCC [<xref ref-type="bibr" rid="scirp.80931-ref15">15</xref>] . In this study, we found that the experimental group showed significant reductions in the betweenness centrality and efficiency of the PCC after the down-regulation of the PCC, while the control group did not show any significant changes in the PCC (see <xref ref-type="fig" rid="fig3">Figure 3</xref>(a) and <xref ref-type="fig" rid="fig3">Figure 3</xref>(b)). Moreover, the extra-DMN degree of the PCC of the experimental group was significantly reduced, and the intra-DMN degree did not change after neurofeedback training (see <xref ref-type="fig" rid="fig4">Figure 4</xref>(c)). The results indicated that the connectivity of the PCC with the brain nodes outside of the DMN after the down-regulation of the PCC was mainly reduced, which may lead to a reduction in information transfer from the PCC with the nodes outside of the DMN. Therefore, the betweenness centrality and efficiency of the PCC were reduced after the down-regulation of the PCC. The unchanged degree of the PCC in the intra-DMN of the experimental group further suggests that the PCC is an important key hub of the DMN [<xref ref-type="bibr" rid="scirp.80931-ref26">26</xref>] and maintains a more stable connectivity and information transfer with the nodes in the DMN than the nodes outside of the DMN, even if the activity of the PCC is down-regulated.</p><p>Compared with the pre-training resting run, the degree, nodal efficiency and betweenness centrality of the SFGmed.R and SFGmed. L of the experimental group were significantly decreased during the post-training resting run (see Figures 2(a)-(f)). Moreover, the experimental group significantly reduced the intra-DMN rather than the extra-DMN degree of the SFGmed. R and SFGmed. L (see <xref ref-type="fig" rid="fig4">Figure 4</xref>(a) and <xref ref-type="fig" rid="fig4">Figure 4</xref>(b)). The results showed that the down-regula- tion of the PCC largely reduced the information transmission ability of the SFGmed and the influence of the SFGmed over information flow between other nodes. Because the intra-DMN degree of the SFGmed and the functional connectivity between the SFGmed and PHG were significantly decreased after the neurofeedback training (see <xref ref-type="fig" rid="fig4">Figure 4</xref>(a) and <xref ref-type="fig" rid="fig4">Figure 4</xref>(b) and <xref ref-type="fig" rid="fig5">Figure 5</xref>(a)), it could be inferred that the SFGmed of the experimental group possibly reduced the information transmission with the PHG in the DMN. The PHG.R of the experimental group showed a significant increase in the betweenness centrality and the extra-DMN degree and a significant decrease in the intra-DMN degree after the neurofeedback training (see <xref ref-type="fig" rid="fig3">Figure 3</xref>(d), <xref ref-type="fig" rid="fig4">Figure 4</xref>(d) and <xref ref-type="fig" rid="fig4">Figure 4</xref>(e)). Moreover, the PHG.R of the experimental group showed significantly decreased connectivity with the SFGmed. R in the DMN and increased connectivity with regions outside of the DMN (see <xref ref-type="fig" rid="fig5">Figure 5</xref>(a)). The results could indicate that the real-time neurofeedback training increased the interaction between the PHG.R and the regions outside of the DMN, while it decreased the information transmission between the PHG.R and the regions within the DMN, especially the SFGmed. R.</p><p>Notably, several nodal graph properties of the SFGmed were significantly decreased, while the betweenness centrality of the PHG.R was significantly increased in the experimental group after the down-regulation of the PCC (see Figures 2(a)-(f), <xref ref-type="fig" rid="fig3">Figure 3</xref>(d)). The nodal graph property of the PHG.R seemed to show the opposite pattern compared to the SFGmed for the experimental group. Given that SFGmed covers pre-supplementary motor area (pre-SMA), the functional connectivity between the pre-SMA and PHG of the experiment group was significantly reduced after neurofeedback training because they were actively trying to downregulate PCC (while watching the PCC ROI signal activity) during training by performing a complex motor task [<xref ref-type="bibr" rid="scirp.80931-ref34">34</xref>] . It is possible that the memory processing and motor planning components get decoupled due to the complex motor task being visually guided in the case of the experimental group.As a result, it may lead to the reduced functional connectivity between the SFGmed and PHG, the reduced nodal graph properties of the SFGmed and the increased nodal graph property of the PHG.R after neurofeedback training. Our previous study also found that the down-regulation of the PCC resulted in the reduced activity of the SFGmed in the experimental group. The previous result is consistent with this study and further supports the inference that the levels of congruency of the down-regulation of the PCC with prior knowledge were reduced after neurofeedback training for the experimental group.</p></sec><sec id="s4_3"><title>4.3. Robustness and Stability of the Global Network Parameters</title><p>No significant real-time training-related alterations were found in the global parameters of the brain functional network for both the experimental group and control group. The results indicated that the real-time neurofeedback training could not change the global properties of brain networks in the resting state. For the functional network of the brain, the global properties are more stable and robust than the regional nodal properties. This finding is consistent with previous brain functional network studies [<xref ref-type="bibr" rid="scirp.80931-ref35">35</xref>] [<xref ref-type="bibr" rid="scirp.80931-ref36">36</xref>] that demonstrated that the intrinsic organization of the brain remained consistent during the resting states regardless of preceding experiences. Moreover, this finding also suggests that examining the intrinsic organization of the brain may provide additional insight into the dynamics of the brain that are induced by training.</p></sec><sec id="s4_4"><title>4.4. Limitations</title><p>It should be noted that there are some limitations in this study. Firstly, this study did not include the control groups using neurofeedback from different brain regions as well as sham feedback. Thus, the differences of these two groups may come from not only neurofeedback but also working load and sensory input etc. Secondly, this study parceled each subject’s data into 90 cortical and subcortical regions using the AAL atlas to construct the brain network. Some other atlases can be used to parcel each subject’s data into more regions in future study.</p></sec></sec><sec id="s5"><title>5. Conclusion</title><p>To summarize, we investigated the impact of the down-regulation of the PCC on the topological properties of the brain functional network in the resting state using a graph theory analysis method. We observed that both the small-world properties of the brain functional network and their global network parameters remained stable and robust after the neurofeedback training. Moreover, the results indicated that the down-regulation of the core hub (PCC) in the DMN possibly reduced the information transfer of the PCC with the nodes outside of the DMN and reduced the functional connectivity between the SFGmed and PCC.</p></sec><sec id="s6"><title>Acknowledgements</title><p>The authors are also grateful to Dr. Zhijiang Wang who kindly discussed some issues on graph theory method with us. This work is supported by Key Program of National Natural Science Foundation of China (61731003) and the National Natural Science Foundation of China (61671067).</p></sec><sec id="s7"><title>Cite this paper</title><p>Wang, Y.B., Zhang, J.P., Zhang, G.Y., Yao, L. and Long, Z.Y. (2017) Changes in the Brain’s Intrinsic Organization in the Resting State with Real-Time fMRI Neurofeedback Training of Posterior Cingulate Cortex Activity. Journal of Behavioral and Brain Science, 7, 655-673. https://doi.org/10.4236/jbbs.2017.713044</p></sec></body><back><ref-list><title>References</title><ref id="scirp.80931-ref1"><label>1</label><mixed-citation publication-type="other" xlink:type="simple">Ogawa, S. and Sung, Y.W. (2007) Functional Magnetic Resonance Imaging. Scholarpedia, 2, 3105. https://doi.org/10.4249/scholarpedia.3105</mixed-citation></ref><ref id="scirp.80931-ref2"><label>2</label><mixed-citation publication-type="other" xlink:type="simple">Buckner, R.L. and Vincent, J.L. 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