Interaction and association analysis of a type 1 diabetes susceptibility locus on chromosome 5q11-q13 and the 7q32 chromosomal region in Scandinavian families

被引:25
作者
Holm, P
Rydlander, B
Luthman, H
Kockum, I
机构
[1] Karolinska Inst, Dept Mol Med, Stockholm, Sweden
[2] Lund Univ, Dept Endocrinol, Malmo, Sweden
关键词
D O I
10.2337/diabetes.53.6.1584
中图分类号
R5 [内科学];
学科分类号
1002 ; 100201 ;
摘要
We have previously reported suggestive linkage to chromosome 5p13-q13 in type 1 diabetic families. ISL1, a transcription factor involved in pancreas development, maps to this region. Sequencing of the ISL1 gene in patients and control subjects identified seven single nucleotide polymorphisms (SNPs) and one microsatellite in noncoding regions. Four haplotypes formed by six of these SNPs and one microsatellite were associated with type 1 diabetes in Swedish families (P < 0.04). To identify possible interactions with the 5q11-q13 region, we applied pathway-restricted linkage analysis by analyzing for effects from regions encoding other transcription factors that are active during pancreas development and maintenance of insulin production. Linkage analysis allowing for interaction between 5q11q13 and 7q32 resulted in an increase of logarithm of odds from 2.2 to 5.3. This increase was estimated to correspond to a P value < 0.0016 using permutation. The transcription factor PAX4 is located at 7q32 and participates downstream of ISL1 in the transcription factor cascade critical to P-cell development. Association with type 1 diabetes was also observed using the transmission disequilibrium test for two haplotypes at the PAX4 locus (P < 0.05). We conclude that pathway-restricted linkage analysis assists in the identification of possible gene-gene interactions and that 5q11-q13 and 7q32 together constitute a significant susceptibility factor for type 1 diabetes.
引用
收藏
页码:1584 / 1591
页数:8
相关论文
共 37 条
[11]   Pedigree disequilibrium tests for multilocus haplotypes [J].
Dudbridge, F .
GENETIC EPIDEMIOLOGY, 2003, 25 (02) :115-121
[12]   Transcribing pancreas [J].
Edlund, H .
DIABETES, 1998, 47 (12) :1817-1823
[13]   Genetic linkage and association studies of Type I diabetes: challenges and rewards [J].
Field, LL .
DIABETOLOGIA, 2002, 45 (01) :21-35
[14]   Pathophysiological and genetic characterization of the major diabetes locus in GK rats [J].
Galli, J ;
Fakhrai-Rad, H ;
Kamel, A ;
Marcus, C ;
Norgren, S ;
Luthman, H .
DIABETES, 1999, 48 (12) :2463-2470
[15]   PRESENCE OF ISL-1-RELATED LIM DOMAIN HOMEOBOX GENES IN TELEOST AND THEIR SIMILAR PATTERNS OF EXPRESSION IN BRAIN AND SPINAL-CORD [J].
GONG, ZY ;
HUI, CC ;
HEW, CL .
JOURNAL OF BIOLOGICAL CHEMISTRY, 1995, 270 (07) :3335-3345
[16]   Allegro, a new computer program for multipoint linkage analysis [J].
Gudbjartsson, DF ;
Jonasson, K ;
Frigge, ML ;
Kong, A .
NATURE GENETICS, 2000, 25 (01) :12-13
[17]   NOD Idd5 locus controls insulitis and diabetes and overlaps the orthologous CTLA4/IDDM12 and NRAMP1 loci in humans [J].
Hill, NJ ;
Lyons, PA ;
Armitage, N ;
Todd, JA ;
Wicker, LS ;
Peterson, LB .
DIABETES, 2000, 49 (10) :1744-1747
[18]  
Holm P, 2001, AM J HUM GENET, V69, P1301
[19]  
Huang HP, 2000, J BIOMED SCI, V7, P27, DOI 10.1007/BF02255915
[20]   β-cell dysfunction in late-onset diabetic subjects carrying homozygous mutation in transcription factors NeuroD1 and Pax4 [J].
Kanatsuka, A ;
Tokuyama, Y ;
Nozaki, O ;
Matsui, K ;
Egashira, T .
METABOLISM-CLINICAL AND EXPERIMENTAL, 2002, 51 (09) :1161-1165