Genetic association studies in mood disorders: issues and promise

被引:11
作者
Detera-Wadleigh, SD [1 ]
McMahon, FJ [1 ]
机构
[1] NIMH, Genet Mood & Anxiety Disorders Unit, Mood & Anxiety Disorders Program, Intramural Res Program,NIH,US Dept HHS, Bethesda, MD 20892 USA
关键词
D O I
10.1080/09540260400014377
中图分类号
R749 [精神病学];
学科分类号
100205 ;
摘要
Genetic association is a powerful method for identifying genetic variants that contribute to the molecular basis of complex diseases. There is now a wealth of informative, validated and densely-spaced single nucleotide polymorphism (SNP) markers for use in association studies, and the delineation of the genome-wide haplotype architecture will greatly enhance our ability to conduct whole genome association screens, fine mapping of linkage regions, and systematic screening of functional candidate genes. Single nucleotide polymorphism-based genotyping technology has progressed dramatically to the point of high-throughput methods that can assay up to thousands of SNPs on many samples in one experiment. Genotyping cost remains a limiting factor in complex disease studies, where numerous SNPs and large sample sets are needed to maximize statistical power. Strategies designed to reduce cost include DNA pooling and analysis with tagSNPs. As larger clinical samples become available, it will be increasingly important to test for hidden stratification in case-control studies, as well as transmission distortion in family-based studies, either of which can lead to spurious association findings. As yet, there is no widely-accepted genetic association finding in mood disorders, but functional candidate genes, such as the serotonin transporter, and positional candidates, such as G72/G30 on chromosome 13q, are beginning to be identified in several studies. Relating associated variants to the phenotype represents the next critical step toward establishing the pathogenic role of gene variants in mood disorders.
引用
收藏
页码:301 / 310
页数:10
相关论文
共 88 条
[41]   Family-based tests of association in the presence of linkage [J].
Lake, SL ;
Blacker, D ;
Laird, NM .
AMERICAN JOURNAL OF HUMAN GENETICS, 2000, 67 (06) :1515-1525
[42]   Pyrosequencling™ based SNP allele frequency estimation in DNA pools [J].
Lavebratt, C ;
Sengul, S ;
Jansson, M ;
Schalling, M .
HUMAN MUTATION, 2004, 23 (01) :92-97
[43]   Genome scan meta-analysis of schizophrenia and bipolar disorder, part II:: Schizophrenia [J].
Lewis, CM ;
Levinson, DF ;
Wise, LH ;
DeLisi, LE ;
Straub, RE ;
Hovatta, I ;
Williams, NM ;
Schwab, SG ;
Pulver, AE ;
Faraone, SV ;
Brzustowicz, LM ;
Kaufmann, CA ;
Garver, DL ;
Gurling, HMD ;
Lindholm, E ;
Coon, H ;
Moises, HW ;
Byerley, W ;
Shaw, SH ;
Mesen, A ;
Sherrington, R ;
O'Neill, FA ;
Walsh, D ;
Kendler, KS ;
Ekelund, J ;
Paunio, T ;
Lönnqvist, J ;
Peltonen, L ;
O'Donovan, MC ;
Owen, MJ ;
Wildenauer, DB ;
Maier, W ;
Nestadt, G ;
Blouin, JL ;
Antonarakis, SE ;
Mowry, BJ ;
Silverman, JM ;
Crowe, RR ;
Cloninger, CR ;
Tsuang, MT ;
Malaspina, D ;
Harkavy-Friedman, JM ;
Svrakic, DM ;
Bassett, AS ;
Holcomb, J ;
Kalsi, G ;
McQuillin, A ;
Brynjolfson, J ;
Sigmundsson, T ;
Petursson, H .
AMERICAN JOURNAL OF HUMAN GENETICS, 2003, 73 (01) :34-48
[44]   Systematic changes in gene expression in postmortem human brains associated with tissue pH and terminal medical conditions [J].
Li, JZ ;
Vawter, MP ;
Walsh, DM ;
Tomita, H ;
Evans, SJ ;
Choudary, PV ;
Lopez, JF ;
Avelar, A ;
Shokoohi, V ;
Chung, T ;
Mesarwi, O ;
Jones, EG ;
Watson, SJ ;
Akil, H ;
Bunney, WE ;
Myers, RM .
HUMAN MOLECULAR GENETICS, 2004, 13 (06) :609-616
[45]   Suggestive evidence for linkage of schizophrenia to markers on chromosome 13 in Caucasian but not Oriental populations [J].
Lin, MW ;
Sham, P ;
Hwu, HG ;
Collier, D ;
Murray, R ;
Powell, JF .
HUMAN GENETICS, 1997, 99 (03) :417-420
[46]   Fine mapping supports previous linkage evidence for a bipolar disorder susceptibility locus on 13q32 [J].
Liu, CY ;
Badner, JA ;
Christian, SL ;
Guroff, JJ ;
Detera-Wadleigh, SD ;
Gershon, ES .
AMERICAN JOURNAL OF MEDICAL GENETICS, 2001, 105 (04) :375-380
[47]   Evidence for a putative bipolar disorder locus on 2p13-16 and other potential loci on 4q31, 7q34, 8q13, 9q31, 10q21-24, 13q32, 14q21 and 17q11-12 [J].
Liu, J ;
Juo, SH ;
Dewan, A ;
Grunn, A ;
Tong, X ;
Brito, M ;
Park, N ;
Loth, JE ;
Kanyas, K ;
Lerer, B ;
Endicott, J ;
Penchaszadeh, G ;
Knowles, JA ;
Ott, J ;
Gilliam, TC ;
Baron, M .
MOLECULAR PSYCHIATRY, 2003, 8 (03) :333-342
[48]   Chromosomal abnormalities and mental illness [J].
MacIntyre, D ;
Blackwood, DHR ;
Porteous, DJ ;
Pickard, BS ;
Muir, WJ .
MOLECULAR PSYCHIATRY, 2003, 8 (03) :275-287
[49]   Cell proliferation in adult hippocampus is decreased by inescapable stress: Reversal by fluoxetine treatment [J].
Malberg, JE ;
Duman, RS .
NEUROPSYCHOPHARMACOLOGY, 2003, 28 (09) :1562-1571
[50]   A test for linkage and association in general pedigrees: The pedigree disequilibrium test [J].
Martin, ER ;
Monks, SA ;
Warren, LL ;
Kaplan, NL .
AMERICAN JOURNAL OF HUMAN GENETICS, 2000, 67 (01) :146-154