The whole blood transcriptional regulation landscape in 465 COVID-19 infected samples from Japan COVID-19 Task Force

Qingbo S Wang1,2, Ryuya Edahiro1,3, Ho Namkoong4

  • 1Department of Statistical Genetics, Osaka University Graduate School of Medicine, Suita, Japan.

Nature Communications
|August 22, 2022
PubMed

Insights

This study analyzed gene expression in COVID-19 patients, identifying regulatory variants and genes linked to severe disease. Findings offer insights into COVID-19 mechanisms and transcriptional responses.

Area of Science:

  • Genomics
  • Immunology
  • Molecular Biology

Background:

  • Limited understanding of gene expression dynamics in COVID-19.
  • Need for comprehensive analysis of regulatory variants in infected individuals.

Purpose of the Study:

  • To analyze whole blood RNA-seq data from COVID-19 patients to identify regulatory variants.
  • To investigate gene expression changes associated with COVID-19 severity.
  • To provide a reference for transcriptional landscapes in response to COVID-19 infection.

Main Methods:

  • Whole blood RNA-sequencing on 465 genotyped samples (359 severe, 106 non-severe COVID-19 cases).
  • Analysis of expression quantitative trait loci (eQTLs) and splice quantitative trait loci (sQTLs).
  • Differential gene expression analysis and identification of severity-interaction eQTLs (ieQTLs).

Main Results:

  • Discovery of 1169 putative causal eQTLs and 1549 putative causal sQTLs.
  • Identification of 198 genes with increased expression in severe COVID-19, enriched for innate immune functions.
  • Characterization of COVID-19 severity-interaction eQTLs (ieQTLs).

Conclusions:

  • Comprehensive catalog of whole blood regulatory variants in Japanese COVID-19 patients.
  • Provides a reference for transcriptional landscapes and mechanisms underlying COVID-19.
  • Highlights the role of innate immunity and genetic regulation in COVID-19 severity.

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