Gender Differences of Brain Glucose Metabolic Networks Revealed by FDG-PET: Evidence from a Large Cohort of 400 Young Adults

被引:33
作者
Hu, Yuxiao [1 ]
Xu, Qiang [2 ]
Li, Kai [3 ]
Zhu, Hong [1 ]
Qi, Rongfeng [2 ]
Zhang, Zhigiang [2 ]
Lu, Guangming [2 ]
机构
[1] Nanjing Univ, Jinling Hosp, Coll Med, Sch Clin,Dept Nucl Med, Nanjing 210008, Jiangsu, Peoples R China
[2] Nanjing Univ, Jinling Hosp, Coll Med, Sch Clin,Dept Med Imaging, Nanjing 210008, Jiangsu, Peoples R China
[3] Soochow Univ, Dept Pharmacol, Suzhou, Peoples R China
关键词
STATE FUNCTIONAL CONNECTIVITY; WHITE-MATTER MICROSTRUCTURE; VOXEL-BASED MORPHOMETRY; REGIONAL GRAY-MATTER; SEX-DIFFERENCES; CORTICAL THICKNESS; HEALTHY-INDIVIDUALS; CORPUS-CALLOSUM; DIMORPHISM; SCHIZOPHRENIA;
D O I
10.1371/journal.pone.0083821
中图分类号
O [数理科学和化学]; P [天文学、地球科学]; Q [生物科学]; N [自然科学总论];
学科分类号
07 ; 0710 ; 09 ;
摘要
Background: Gender differences of the human brain are an important issue in neuroscience research. In recent years, an increasing amount of evidence has been gathered from noninvasive neuroimaging studies supporting a sexual dimorphism of the human brain. However, there is a lack of imaging studies on gender differences of brain metabolic networks based on a large population sample. Materials and Methods: FDG PET data of 400 right-handed, healthy subjects, including 200 females (age: 25 similar to 45 years, mean age +/- SD: 40.9 +/- 3.9 years) and 200 age-matched males were obtained and analyzed in the present study. We first investigated the regional differences of brain glucose metabolism between genders using a voxel-based two-sample t-test analysis. Subsequently, we investigated the gender differences of the metabolic networks. Sixteen metabolic covariance networks using seed-based correlation were analyzed. Seven regions showing significant regional metabolic differences between genders, and nine regions conventionally used in the resting-state network studies were selected as regions-of-interest. Permutation tests were used for comparing within-and between-network connectivity between genders. Results: Compared with the males, females showed higher metabolism in the posterior part and lower metabolism in the anterior part of the brain. Moreover, there were widely distributed patterns of the metabolic networks in the human brain. In addition, significant gender differences within and between brain glucose metabolic networks were revealed in the present study. Conclusion: This study provides solid data that reveal gender differences in regional brain glucose metabolism and brain glucose metabolic networks. These observations might contribute to the better understanding of the gender differences in human brain functions, and suggest that gender should be included as a covariate when designing experiments and explaining results of brain glucose metabolic networks in the control and experimental individuals or patients.
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页数:9
相关论文
共 47 条
[1]  
Abraham A., 2013, BRAIN IMAGING BEHAV, P1
[2]   Sexual dimorphism and asymmetries in the gray-white composition of the human cerebrum [J].
Allen, JS ;
Damasio, H ;
Grabowski, TJ ;
Bruss, J ;
Zhang, W .
NEUROIMAGE, 2003, 18 (04) :880-894
[3]   Toward discovery science of human brain function [J].
Biswal, Bharat B. ;
Mennes, Maarten ;
Zuo, Xi-Nian ;
Gohel, Suril ;
Kelly, Clare ;
Smith, Steve M. ;
Beckmann, Christian F. ;
Adelstein, Jonathan S. ;
Buckner, Randy L. ;
Colcombe, Stan ;
Dogonowski, Anne-Marie ;
Ernst, Monique ;
Fair, Damien ;
Hampson, Michelle ;
Hoptman, Matthew J. ;
Hyde, James S. ;
Kiviniemi, Vesa J. ;
Kotter, Rolf ;
Li, Shi-Jiang ;
Lin, Ching-Po ;
Lowe, Mark J. ;
Mackay, Clare ;
Madden, David J. ;
Madsen, Kristoffer H. ;
Margulies, Daniel S. ;
Mayberg, Helen S. ;
McMahon, Katie ;
Monk, Christopher S. ;
Mostofsky, Stewart H. ;
Nagel, Bonnie J. ;
Pekar, James J. ;
Peltier, Scott J. ;
Petersen, Steven E. ;
Riedl, Valentin ;
Rombouts, Serge A. R. B. ;
Rypma, Bart ;
Schlaggar, Bradley L. ;
Schmidt, Sein ;
Seidler, Rachael D. ;
Siegle, Greg J. ;
Sorg, Christian ;
Teng, Gao-Jun ;
Veijola, Juha ;
Villringer, Arno ;
Walter, Martin ;
Wang, Lihong ;
Weng, Xu-Chu ;
Whitfield-Gabrieli, Susan ;
Williamson, Peter ;
Windischberger, Christian .
PROCEEDINGS OF THE NATIONAL ACADEMY OF SCIENCES OF THE UNITED STATES OF AMERICA, 2010, 107 (10) :4734-4739
[4]   Sex differences in brain structure in auditory and cingulate regions [J].
Brun, Caroline C. ;
Lepore, Natasha ;
Luders, Eileen ;
Chou, Yi-Yu ;
Madsen, Sarah K. ;
Toga, Arthur W. ;
Thompson, Paul M. .
NEUROREPORT, 2009, 20 (10) :930-935
[5]   Sex differences in regional gray matter in healthy individuals aged 44-48 years: A voxel-based morphometric study [J].
Chen, Xiaohua ;
Sachdev, Perminder S. ;
Wen, Wei ;
Anstey, Kaarin J. .
NEUROIMAGE, 2007, 36 (03) :691-699
[6]   Sex differences in the temporal lobe white matter and the corpus callosum: a diffusion tensor tractography study [J].
Choi, Chi-Hoon ;
Lee, Jong-Min ;
Koo, Bang-Bon ;
Park, Jun Sung ;
Kim, Dae-Shik ;
Kwon, Jun Soo ;
Kim, In Young .
NEUROREPORT, 2010, 21 (01) :73-77
[7]   Sex-linked white matter microstructure of the social and analytic brain [J].
Chou, Kun-Hsien ;
Cheng, Yawei ;
Chen, I-Yun ;
Lin, Ching-Po ;
Chu, Woei-Chyn .
NEUROIMAGE, 2011, 54 (01) :725-733
[8]   Gender differences in brain regional homogeneity of healthy subjects after normal sleep and after sleep deprivation: A resting-state fMRI study [J].
Dai, Xi-Jian ;
Gong, Hong-Han ;
Wang, Yi-Xiang ;
Zhou, Fu-Qing ;
Min, You-Jiang ;
Zhao, Feng ;
Wang, Si-Yong ;
Liu, Bi-Xia ;
Xiao, Xiang-Zuo .
SLEEP MEDICINE, 2012, 13 (06) :720-727
[9]   Metabolic Brain Covariant Networks as Revealed by FDG-PET with Reference to Resting-State fMRI Networks [J].
Di, Xin ;
Biswal, Bharat B. .
BRAIN CONNECTIVITY, 2012, 2 (05) :275-283
[10]   YOUNG-ADULT HUMAN BRAIN - AN MRI-BASED MORPHOMETRIC ANALYSIS [J].
FILIPEK, PA ;
RICHELME, C ;
KENNEDY, DN ;
CAVINESS, VS .
CEREBRAL CORTEX, 1994, 4 (04) :344-360