Multilocus analysis of hormonal, neurotransmitter, inflammatory pathways and genome-wide associated variants in migraine susceptibility

被引:15
|
作者
Ghosh, J. [1 ]
Pradhan, S. [2 ]
Mittal, B. [1 ]
机构
[1] Sanjay Gandhi Postgrad Inst Med Sci SGPGIMS, Dept Genet, Lucknow, Uttar Pradesh, India
[2] Sanjay Gandhi Postgrad Inst Med Sci SGPGIMS, Dept Neurol, Lucknow, Uttar Pradesh, India
关键词
classification and regression tree; gene-gene interaction; migraine; multifactor dimensionality reduction; multilocus; multivariate; polymorphisms; susceptibility; NEUROGENIC INFLAMMATION; GENE POLYMORPHISMS; COMMON MIGRAINE; POPULATION; ESTROGEN; METAANALYSIS; REPLICATION; 8Q22.1; ALPHA; AURA;
D O I
10.1111/ene.12427
中图分类号
R74 [神经病学与精神病学];
学科分类号
摘要
Background and purpose Migraine pathophysiology involves a complex interplay of processes wherein the hormonal, neurotransmitter and inflammatory pathways interact to influence the migraine phenotype. However, all studies pertaining to the role of genetic variants in migraine have been restricted to a specific pathway and none of the studies has looked into inter-pathway genetic analysis. Our aim was to combine all the genetic variants from our previously reported studies to conduct higher order gene-gene interaction analysis using different multi-analytical approaches. Methods The study group included 324 migraine patients and 134 healthy controls. The study included 20 polymorphisms from hormonal, neurotransmitter, inflammatory and genome-wide associated variants from our published reports. Univariate and multivariate analyses were carried out by logistic regression. Classification and regression tree (CART) analysis was performed to build a decision tree via recursive partitioning. The high order genetic interactions associated with migraine risk were analyzed using multifactor dimensionality reduction (MDR). Results Univariate analysis revealed significant associations of polymorphisms in CYP19A1, ESR1, TNFA and PRDM16 genes with migraine susceptibility. Multiple regression analysis found significant results for four markers in CYP19A1, TNFA, ESR1 and LRP1 genes. In CART, the most prominent splitting variable was CYP19A1 polymorphism followed by TNFA, ESR1 and PRDM16 markers. The MDR analysis identified markers of CYP19A1, CYP19A1- TNFA, CYP19A1- ESR1- TNFA and CYP19A1- ESR1- TRPM8- PRDM16 as best models for one, two, three and four factors, respectively. Conclusions The present study suggests interactions amongst hormonal, inflammatory and genome-wide associated variants but not with neurotransmitter pathway variants in migraine susceptibility.
引用
收藏
页码:1011 / 1020
页数:10
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