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Pleiotropy-guided transcriptome imputation from normal and tumor tissues identifies candidate susceptibility genes for breast and ovarian cancer

Authors :
Siddhartha P. Kar
Daniel P.C. Considine
Jonathan P. Tyrer
Jasmine T. Plummer
Stephanie Chen
Felipe S. Dezem
Alvaro N. Barbeira
Padma S. Rajagopal
Will T. Rosenow
Fernando Moreno
Clara Bodelon
Jenny Chang-Claude
Georgia Chenevix-Trench
Anna deFazio
Thilo Dörk
Arif B. Ekici
Ailith Ewing
George Fountzilas
Ellen L. Goode
Mikael Hartman
Florian Heitz
Peter Hillemanns
Estrid Høgdall
Claus K. Høgdall
Tomasz Huzarski
Allan Jensen
Beth Y. Karlan
Elza Khusnutdinova
Lambertus A. Kiemeney
Susanne K. Kjaer
Rüdiger Klapdor
Martin Köbel
Jingmei Li
Clemens Liebrich
Taymaa May
Håkan Olsson
Jennifer B. Permuth
Paolo Peterlongo
Paolo Radice
Susan J. Ramus
Marjorie J. Riggan
Harvey A. Risch
Emmanouil Saloustros
Jacques Simard
Lukasz M. Szafron
Linda Titus
Cheryl L. Thompson
Robert A. Vierkant
Stacey J. Winham
Wei Zheng
Jennifer A. Doherty
Andrew Berchuck
Kate Lawrenson
Hae Kyung Im
Ani W. Manichaikul
Paul D.P. Pharoah
Simon A. Gayther
Joellen M. Schildkraut
Source :
HGG Advances, Vol 2, Iss 3, Pp 100042- (2021)
Publication Year :
2021
Publisher :
Elsevier, 2021.

Abstract

Summary: Familial, sequencing, and genome-wide association studies (GWASs) and genetic correlation analyses have progressively unraveled the shared or pleiotropic germline genetics of breast and ovarian cancer. In this study, we aimed to leverage this shared germline genetics to improve the power of transcriptome-wide association studies (TWASs) to identify candidate breast cancer and ovarian cancer susceptibility genes. We built gene expression prediction models using the PrediXcan method in 681 breast and 295 ovarian tumors from The Cancer Genome Atlas and 211 breast and 99 ovarian normal tissue samples from the Genotype-Tissue Expression project and integrated these with GWAS meta-analysis data from the Breast Cancer Association Consortium (122,977 cases/105,974 controls) and the Ovarian Cancer Association Consortium (22,406 cases/40,941 controls). The integration was achieved through application of a pleiotropy-guided conditional/conjunction false discovery rate (FDR) approach in the setting of a TWASs. This identified 14 candidate breast cancer susceptibility genes spanning 11 genomic regions and 8 candidate ovarian cancer susceptibility genes spanning 5 genomic regions at conjunction FDR < 0.05 that were >1 Mb away from known breast and/or ovarian cancer susceptibility loci. We also identified 38 candidate breast cancer susceptibility genes and 17 candidate ovarian cancer susceptibility genes at conjunction FDR < 0.05 at known breast and/or ovarian susceptibility loci. The 22 genes identified by our cross-cancer analysis represent promising candidates that further elucidate the role of the transcriptome in mediating germline breast and ovarian cancer risk.

Details

Language :
English
ISSN :
26662477
Volume :
2
Issue :
3
Database :
Directory of Open Access Journals
Journal :
HGG Advances
Publication Type :
Academic Journal
Accession number :
edsdoj.7f93459716f483a8f2ed03fab6135b6
Document Type :
article
Full Text :
https://doi.org/10.1016/j.xhgg.2021.100042