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Updated: Aug 28, 2025

Rare Event Detection Using Error-corrected DNA and RNA Sequencing
Published on: August 3, 2018
SAIGE-GENE+ improves the efficiency and accuracy of set-based rare variant association tests
Wei Zhou1,2,3, Wenjian Bi4,5,6, Zhangchen Zhao7,8
1Analytic and Translational Genetics Unit, Massachusetts General Hospital, Boston, MA, USA. wzhou@broadinstitute.org.
None:
Several biobanks, including UK Biobank (UKBB), are generating large-scale sequencing data. An existing method, SAIGE-GENE, performs well when testing variants with minor allele frequency (MAF) ≤ 1%, but inflation is observed in variance component set-based tests when restricting to variants with MAF ≤ 0.1% or 0.01%. Here, we propose SAIGE-GENE+ with greatly improved type I error control and computational efficiency to facilitate rare variant tests in large-scale data. We further show that incorporating multiple MAF cutoffs and functional annotations can improve power and thus uncover new gene-phenotype associations. In the analysis of UKBB whole exome sequencing data for 30 quantitative and 141 binary traits, SAIGE-GENE+ identified 551 gene-phenotype associations.
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