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Genetic regulation of RNA splicing in human pancreatic islets

Published inGenome biology, vol. 23, no. 1, 196
Publication date2022-09-15
First online date2022-09-15
Abstract

Background: Non-coding genetic variants that influence gene transcription in pancreatic islets play a major role in the susceptibility to type 2 diabetes (T2D), and likely also contribute to type 1 diabetes (T1D) risk. For many loci, however, the mechanisms through which non-coding variants influence diabetes susceptibility are unknown.

Results: We examine splicing QTLs (sQTLs) in pancreatic islets from 399 human donors and observe that common genetic variation has a widespread influence on the splicing of genes with established roles in islet biology and diabetes. In parallel, we profile expression QTLs (eQTLs) and use transcriptome-wide association as well as genetic co-localization studies to assign islet sQTLs or eQTLs to T2D and T1D susceptibility signals, many of which lack candidate effector genes. This analysis reveals biologically plausible mechanisms, including the association of T2D with an sQTL that creates a nonsense isoform in ERO1B, a regulator of ER-stress and proinsulin biosynthesis. The expanded list of T2D risk effector genes reveals overrepresented pathways, including regulators of G-protein-mediated cAMP production. The analysis of sQTLs also reveals candidate effector genes for T1D susceptibility such as DCLRE1B, a senescence regulator, and lncRNA MEG3.

Conclusions: These data expose widespread effects of common genetic variants on RNA splicing in pancreatic islets. The results support a role for splicing variation in diabetes susceptibility, and offer a new set of genetic targets with potential therapeutic benefit.

Keywords
  • Beta cells
  • CTRB2
  • Diabetes pathophysiology
  • G-protein signaling
  • Pancreatic beta-cells
  • Pancreatic islets
  • Quantitative trait loci
  • RNA splicing
  • Senescence
  • TWAS
  • Type 1 diabetes
  • Type 2 diabetes
  • Diabetes Mellitus, Type 1 / genetics
  • Diabetes Mellitus, Type 1 / metabolism
  • Diabetes Mellitus, Type 2 / genetics
  • Exodeoxyribonucleases / genetics
  • Exodeoxyribonucleases / metabolism
  • Humans
  • Islets of Langerhans / metabolism
  • Proinsulin / genetics
  • Proinsulin / metabolism
  • Protein Isoforms / genetics
  • RNA Splicing
  • RNA, Long Noncoding / metabolism
Funding
  • European Commission - Expanding the genetic etiological and diagnostic spectrum of monogenic diabetes mellitus [789055]
  • UK Research and Innovation - Targeting etiologic molecular mechanisms to treat human diabetes [MR/L02036X/1]
  • European Commission - Development of a systems biomedicine approach for risk identification, prevention and treatment of type 2 diabetes [667191]
  • European Commission - Computational and functional annotation of genomic elements during development of the model vertebrate zebrafish [643062]
  • European Commission - Human Cell Atlas of the Pancreas [874710]
  • Wellcome Trust - Bridging the gap from type 2 diabetes genetics to functional mechanisms of disease. [095101]
  • Wellcome Trust - Defining mechanisms for pancreatic beta-cell dysfunction in type 2 diabetes [200837]
  • Wellcome Trust - A systematic approach to understanding the biology underpinning GWAS hits. [106130]
  • Wellcome Trust - Human Genetics and Disease Biology: Core Renewal for the Wellcome Trust Centre for Human Genetics [203141]
Citation (ISO format)
ATLA, Goutham et al. Genetic regulation of RNA splicing in human pancreatic islets. In: Genome biology, 2022, vol. 23, n° 1, p. 196. doi: 10.1186/s13059-022-02757-0
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Article (Published version)
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Identifiers
ISSN of the journal1474-7596
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Creation27/09/2022 08:03:00
First validation27/09/2022 08:03:00
Update time16/03/2023 10:27:22
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