Heritability of Cerebral Blood Flow and the Correlation to Schizophrenia Spectrum Disorders: A Pseudo-continuous Arterial Spin Labeling Twin Study

被引:13
作者
Legind, Christian S. [1 ,2 ,3 ]
Broberg, Brian V. [1 ,2 ]
Brouwer, Rachel [4 ]
Mandl, Rene C. W. [1 ,2 ,4 ]
Ebdrup, Bjorn H. [1 ,2 ,3 ]
Anhoj, Simon J. [1 ,2 ]
Jensen, Maria H. [1 ,2 ]
Hilker, Rikke [1 ,2 ]
Fagerlund, Birgitte [1 ,2 ,5 ]
Pol, Hilleke E. Hulshoff [4 ]
Glenthoj, Birte Y. [1 ,2 ,3 ]
Rostrup, Egill [1 ,2 ,6 ]
机构
[1] Univ Copenhagen, Mental Hlth Ctr Glostrup, CINS, Ctr Clin Intervent & Neuropsychiat Schizophrenia, Copenhagen, Denmark
[2] Univ Copenhagen, CNSR, Mental Hlth Ctr Glostrup, Copenhagen, Denmark
[3] Univ Copenhagen, Fac Hlth & Med Sci, Dept Clin Med, Copenhagen, Denmark
[4] Univ Utrecht, Univ Med Ctr Utrecht, Brain Ctr Rudolf Magnus, Dept Psychiat, Utrecht, Netherlands
[5] Univ Copenhagen, Dept Psychol, Copenhagen, Denmark
[6] Rigshosp Glostrup, Dept Clin Physiol Nucl Med & PET, Funct Imaging Unit, Copenhagen, Denmark
关键词
pCASL; cerebral blood flow; relatives; twins; genes; POSITRON-EMISSION-TOMOGRAPHY; ANTIPSYCHOTIC MEDICATION; GLUCOSE-METABOLISM; BASAL GANGLIA; HIGH-RISK; PERFUSION; HYPOFRONTALITY; METAANALYSIS; DYSFUNCTION; CIRCUITRY;
D O I
10.1093/schbul/sbz007
中图分类号
R749 [精神病学];
学科分类号
100205 ;
摘要
Whether aberrant cerebral blood flow (CBF) in schizophrenia is affected by genetic influences, and consequently a potential marker for genetic susceptibility, is unknown. Our aims were to determine the heritability of CBF in thalamic, frontal, and striatal areas, and to ascertain if associations with disease were under genetic influence. Monozygotic (MZ) twin pairs concordant (n = 2) or discordant (n = 20) for schizophrenia spectrum disorders (ICD-10 F2x.x), matched on sex and age with dizygotic (DZ; n = 20) and healthy control pairs (MZ: n = 27; DZ: n = 18; total: n = 181 individuals), were recruited via the National Danish Twin Register. CBF in thalamus, frontal lobes, and putamen was measured with pseudo-continuous arterial spin labeling on a 3 T magnetic resonance scanner. Twin statistics were performed with structural equation modeling. CBF in the frontal lobes was heritable (h(2) = 0.44, 95% CI [0.22-0.60]) but not correlated to disease. CBF correlated to schizophrenia spectrum disorders in the left thalamus (r = 0.17, [0.03-0.31]; P = 0.02), as well as in the left putamen (r = 0.19, [0.05-0.32]; P = 0.007) and the right putamen (r = 0.18, [0.03-0.32]; P = 0.02). When restricting the sample to schizophrenia (F20.x) only, shared genetic influences between CBF in the left putamen and schizophrenia liability (phenotypic correlation = 0.44, [0.28-0.58], P < 0.001) were found. Our results provide heritability estimates of CBF in the frontal lobes, and we find CBF in thalamus and putamen to be altered in schizophrenia spectrum disorders. Furthermore, shared genetic factors influence schizophrenia liability and striatal perfusion. Specifically, higher perfusion in the left putamen may constitute a marker of genetic susceptibility for schizophrenia.
引用
收藏
页码:1231 / 1241
页数:11
相关论文
共 50 条
  • [31] Reduction of BOLD interference in pseudo-continuous arterial spin labeling: towards quantitative fMRI
    Warnock, Geoffrey
    Oezbay, Pinar S.
    Kuhn, Felix P.
    Nanz, Daniel
    Buck, Alfred
    Boss, Andreas
    Rossi, Cristina
    JOURNAL OF CEREBRAL BLOOD FLOW AND METABOLISM, 2018, 38 (05) : 847 - 856
  • [32] Effects of acute levodopa challenge on resting cerebral blood flow in Parkinson's Disease patients assessed using pseudo-continuous arterial spin labeling
    Chen, Yufen
    Pressman, Peter
    Simuni, Tanya
    Parrish, Todd B.
    Gitelman, Darren R.
    PEERJ, 2015, 3
  • [33] Neural plasticity secondary to carpal tunnel syndrome: a pseudo-continuous arterial spin labeling study
    Deng, Xue
    Chau, Phoebe Lai-Heung
    Chiu, Suk-Yee
    Leung, Kwok-Pui
    Hu, Yong
    Ip, Wing-Yuk
    NEURAL REGENERATION RESEARCH, 2021, 16 (01) : 158 - 165
  • [34] Pseudo-continuous arterial spin labeling MRI study of patients with obsessive-compulsive disorder
    Ota, Miho
    Kanie, Ayako
    Kobayashi, Yuki
    Nakajima, Aiichiro
    Sato, Noriko
    Horikoshi, Masaru
    PSYCHIATRY RESEARCH-NEUROIMAGING, 2020, 303
  • [35] Improving the robustness of pseudo-continuous arterial spin labeling to off-resonance and pulsatile flow velocity
    Zhao, Li
    Vidorreta, Marta
    Soman, Salil
    Detre, John A.
    Alsop, David C.
    MAGNETIC RESONANCE IN MEDICINE, 2017, 78 (04) : 1342 - 1351
  • [36] Characterization of Skull Base Lesions Using Pseudo-Continuous Arterial Spin Labeling
    B. Geerts
    D. Leclercq
    S. Tezenas du Montcel
    B. Law-ye
    S. Gerber
    D. Bernardeschi
    D. Galanaud
    D. Dormont
    N. Pyatigorskaya
    Clinical Neuroradiology, 2019, 29 : 75 - 86
  • [37] Characterization of Skull Base Lesions Using Pseudo-Continuous Arterial Spin Labeling
    Geerts, B.
    Leclercq, D.
    du Montcel, S. Tezenas
    Law-ye, B.
    Gerber, S.
    Bernardeschi, D.
    Galanaud, D.
    Dormont, D.
    Pyatigorskaya, N.
    CLINICAL NEURORADIOLOGY, 2019, 29 (01) : 75 - 86
  • [38] Model-based super-resolution reconstruction for pseudo-continuous Arterial Spin Labeling
    Beirinckx, Quinten
    Bladt, Piet
    van der Plas, Merlijn C. E.
    van Osch, Matthias J. P.
    Jeurissen, Ben
    den Dekker, Arnold J.
    Sijbers, Jan
    NEUROIMAGE, 2024, 286
  • [39] Effect of labelling plane angulation and position on labelling efficiency and cerebral blood flow quantification in pseudo-continuous arterial spin labelling
    Sokolska, Magdalena
    Bainbridge, Alan
    Rojas-Villabona, Alvaro
    Golay, Xavier
    Thomas, David L.
    MAGNETIC RESONANCE IMAGING, 2019, 59 : 61 - 67
  • [40] Real-Time Functional MRI Using Pseudo-Continuous Arterial Spin Labeling
    Hernandez-Garcia, Luis
    Jahanian, Hesamoddin
    Greenwald, Mark K.
    Zubieta, Jon-Kar
    Peltier, Scott J.
    MAGNETIC RESONANCE IN MEDICINE, 2011, 65 (06) : 1570 - 1577