Significant Variations in Double-Stranded RNA Levels in Cultured Skin Cells

Author:

Sadeq Shaymaa12,Chitcharoen Suwalak34,Al-Hashimi Surar15,Rattanaburi Somruthai4,Casement John6,Werner Andreas1ORCID

Affiliation:

1. Biosciences Institute, Newcastle University, Newcastle upon Tyne NE2 4HH, UK

2. Fallujah College of Medicine, University of Fallujah, Al-Fallujah 31002, Iraq

3. Department of Microbiology, Faculty of Medicine, Khon Kaen University, Khon Kaen 40002, Thailand

4. Center of Excellence in Systems Microbiology, Faculty of Medicine, Chulalongkorn University, Bangkok 10330, Thailand

5. College of Medicine, University of Misan, Al-Sader Teaching Hospital, Amarah 62001, Iraq

6. Bioinformatics Support Unit, Medical School, Newcastle University, Newcastle upon Tyne NE2 4HH, UK

Abstract

Endogenous double-stranded RNA has emerged as a potent stimulator of innate immunity. Under physiological conditions, endogenous dsRNA is maintained in the cell nucleus or the mitochondria; however, if protective mechanisms are breached, it leaches into the cytoplasm and triggers immune signaling pathways. Ectopic activation of innate immune pathways is associated with various diseases and senescence and can trigger apoptosis. Hereby, the level of cytoplasmic dsRNA is crucial. We have enriched dsRNA from two melanoma cell lines and primary dermal fibroblasts, including a competing probe, and analyzed the dsRNA transcriptome using RNA sequencing. There was a striking difference in read counts between the cell lines and the primary cells, and the effect was confirmed by northern blotting and immunocytochemistry. Both mitochondria (10–20%) and nuclear transcription (80–90%) contributed significantly to the dsRNA transcriptome. The mitochondrial contribution was lower in the cancer cells compared to fibroblasts. The expression of different transposable element families was comparable, suggesting a general up-regulation of transposable element expression rather than stimulation of a specific sub-family. Sequencing of the input control revealed minor differences in dsRNA processing pathways with an upregulation of oligoadenylate synthase and RNP125 that negatively regulates the dsRNA sensors RIG1 and MDA5. Moreover, RT-qPCR, Western blotting, and immunocytochemistry confirmed the relatively minor adaptations to the hugely different dsRNA levels. As a consequence, these transformed cell lines are potentially less tolerant to interventions that increase the formation of endogenous dsRNA.

Funder

Northern Counties Kidney Research Fund

Iraqi Ministry of Higher Education

Publisher

MDPI AG

Subject

General Medicine

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