Mitochondrial dysfunction in bipolar disorder: evidence from magnetic resonance spectroscopy research

被引:324
作者
Stork, C [1 ]
Renshaw, PF [1 ]
机构
[1] McLean Hosp, Brain Imaging Ctr, Belmont, MA 02478 USA
关键词
bipolar disorder; magnetic resonance spectroscopy; mitochondria; bioenergetics;
D O I
10.1038/sj.mp.4001711
中图分类号
Q5 [生物化学]; Q7 [分子生物学];
学科分类号
071010 ; 081704 ;
摘要
Magnetic resonance spectroscopy (MRS) affords a noninvasive window on in vivo brain chemistry and, as such, provides a unique opportunity to gain insight into the biochemical pathology of bipolar disorder. Studies utilizing proton (H-1) MRS have identified changes in cerebral concentrations of N-acetyl aspartate, glutamate/glutamine, choline-containing compounds, myo-inositol, and lactate in bipolar subjects compared to normal controls, while studies using phosphorus (P-31) MRS have examined additional alterations in levels of phosphocreatine, phosphomonoesters, and intracellular pH. We hypothesize that the majority of MRS findings in bipolar subjects can be fit into a more cohesive bioenergetic and neurochemical model of bipolar illness that is both novel and yet in concordance with findings from complementary methodological approaches. In this review, we propose a hypothesis of mitochondrial dysfunction in bipolar disorder that involves impaired oxidative phosphorylation, a resultant shift toward glycolytic energy production, a decrease in total energy production and/or substrate availability, and altered phospholipid metabolism.
引用
收藏
页码:900 / 919
页数:20
相关论文
共 149 条
[1]   ISCHEMIC DELAYED NEURONAL DEATH - A MITOCHONDRIAL HYPOTHESIS [J].
ABE, K ;
AOKI, M ;
KAWAGOE, J ;
YOSHIDA, T ;
HATTORI, A ;
KOGURE, K ;
ITOYAMA, Y .
STROKE, 1995, 26 (08) :1478-1489
[2]   Choline phospholipid metabolism: A target in cancer cells? [J].
Ackerstaff, E ;
Glunde, K ;
Bhujwalla, ZM .
JOURNAL OF CELLULAR BIOCHEMISTRY, 2003, 90 (03) :525-533
[3]   REDUCED BRAIN INOSITOL IN LITHIUM-TREATED RATS [J].
ALLISON, JH ;
STEWART, MA .
NATURE-NEW BIOLOGY, 1971, 233 (43) :267-&
[4]   GLUTAMATE-INDUCED NEURONAL DEATH - A SUCCESSION OF NECROSIS OR APOPTOSIS DEPENDING ON MITOCHONDRIAL-FUNCTION [J].
ANKARCRONA, M ;
DYPBUKT, JM ;
BONFOCO, E ;
ZHIVOTOVSKY, B ;
ORRENIUS, S ;
LIPTON, SA ;
NICOTERA, P .
NEURON, 1995, 15 (04) :961-973
[5]   Functional evaluation techniques in mitochondrial disorders [J].
Argov, Z .
EUROPEAN NEUROLOGY, 1998, 39 (02) :65-71
[6]   Inhibition of mitochondrial complex I by haloperidol: the role of thiol oxidation [J].
Balijepalli, S ;
Boyd, MR ;
Ravindranath, V .
NEUROPHARMACOLOGY, 1999, 38 (04) :567-577
[7]   Protein thiol oxidation by haloperidol results in inhibition of mitochondrial complex I in brain regions: comparison with atypical antipsychotics [J].
Balijepalli, S ;
Kenchappa, RS ;
Boyd, MR ;
Ravindranath, V .
NEUROCHEMISTRY INTERNATIONAL, 2001, 38 (05) :425-435
[8]   DEFECTIVE BRAIN ENERGY-METABOLISM SHOWN BY INVIVO P-31 MR SPECTROSCOPY IN 28 PATIENTS WITH MITOCHONDRIAL CYTOPATHIES [J].
BARBIROLI, B ;
MONTAGNA, P ;
MARTINELLI, P ;
LODI, R ;
IOTTI, S ;
CORTELLI, P ;
FUNICELLO, R ;
ZANIOL, P .
JOURNAL OF CEREBRAL BLOOD FLOW AND METABOLISM, 1993, 13 (03) :469-474
[9]   ABNORMAL BRAIN AND MUSCLE ENERGY-METABOLISM SHOWN BY P-31 MAGNETIC-RESONANCE SPECTROSCOPY IN PATIENTS AFFECTED BY MIGRAINE WITH AURA [J].
BARBIROLI, B ;
MONTAGNA, P ;
CORTELLI, P ;
FUNICELLO, R ;
IOTTI, S ;
MONARI, L ;
PIERANGELI, G ;
ZANIOL, P ;
LUGARESI, E .
NEUROLOGY, 1992, 42 (06) :1209-1214
[10]  
BARKOVICH AJ, 1993, AM J NEURORADIOL, V14, P1119