Genetic architecture of RNA editing regulation in Alzheimer’s disease across diverse ancestral populations

Author:

Gardner Olivia K12ORCID,Van Booven Derek12,Wang Lily1232,Gu Tianjie12,Hofmann Natalia K12,Whitehead Patrice L12,Nuytemans Karen1245,Hamilton-Nelson Kara L12,Adams Larry D12,Starks Takiyah D45,Cuccaro Michael L1267,Martin Eden R1267,Vance Jeffery M1267,Bush William S8910,Byrd Goldie S45,Haines Jonathan L8910,Beecham Gary W1267,Pericak-Vance Margaret A1267,Griswold Anthony J1267

Affiliation:

1. John P. Hussman Institute for Human Genomics , Miller School of Medicine, , Miami, FL 33136, USA

2. University of Miami , Miller School of Medicine, , Miami, FL 33136, USA

3. Department of Public Health Sciences , Miller School of Medicine, , Miami, FL 33136, USA

4. Maya Angelou Center for Health Equity , , Winston-Salem, NC 27101, USA

5. Wake Forest University , , Winston-Salem, NC 27101, USA

6. Department of Human Genetics , Dr. John T Macdonald Foundation, Miller School of Medicine, , Miami, FL 33136, USA

7. University of Miami , Dr. John T Macdonald Foundation, Miller School of Medicine, , Miami, FL 33136, USA

8. Department of Population & Quantitative Health Sciences , , Cleveland, OH 44106, USA

9. Case Western Reserve University , , Cleveland, OH 44106, USA

10. Cleveland Institute for Computational Biology , Cleveland, OH 44106, USA

Abstract

AbstractMost Alzheimer’s disease (AD)-associated genetic variants do not change protein coding sequence and thus likely exert their effects through regulatory mechanisms. RNA editing, the post-transcriptional modification of RNA bases, is a regulatory feature that is altered in AD patients that differs across ancestral backgrounds. Editing QTLs (edQTLs) are DNA variants that influence the level of RNA editing at a specific site. To study the relationship of DNA variants genome-wide, and particularly in AD-associated loci, with RNA editing, we performed edQTL analyses in self-reported individuals of African American (AF) or White (EU) race with corresponding global genetic ancestry averaging 82.2% African ancestry (AF) and 96.8% European global ancestry (EU) in the two groups, respectively. We used whole-genome genotyping array and RNA sequencing data from peripheral blood of 216 AD cases and 212 age-matched, cognitively intact controls. We identified 2144 edQTLs in AF and 3579 in EU, of which 1236 were found in both groups. Among these, edQTLs in linkage disequilibrium (r2 > 0.5) with AD-associated genetic variants in the SORL1, SPI1 and HLA-DRB1 loci were associated with sites that were differentially edited between AD cases and controls. While there is some shared RNA editing regulatory architecture, most edQTLs had distinct effects on the rate of RNA editing in different ancestral populations suggesting a complex architecture of RNA editing regulation. Altered RNA editing may be one possible mechanism for the functional effect of AD-associated variants and may contribute to observed differences in the genetic etiology of AD between ancestries.

Funder

National Institutes of Health

National Institute on Aging

Publisher

Oxford University Press (OUP)

Subject

Genetics (clinical),Genetics,Molecular Biology,General Medicine

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