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Biology subjects

Tellioglu, I.

Publications and source records attributed to Tellioglu, I..

2 recordsLinked to original sources

RNA modifications on Adenosine co-Regulate Macrophage Function

Macrophages are a highly plastic innate immune cell subset that depends on environmental cues to activate, execute and resolve inflammatory responses. This plasticity of function is mirrored by the diversity of RNA modifications that dynamically decorate macrophage transcripts. Here, using the mouse macrophage line RAW 264.7 (RAW), we addressed the combinatorial effect of two major mRNA modifications: adenosine to inosine (A-to-I) deamination by ADAR1 and adenosine N6-methylation (m6A) by METTL3. Using both short-read and single molecule sequencing on RAW macrophages with genetic deletions of ADAR1 or METTL3, we identified transcripts that were modified by both enzymes, with specific functional outcomes on macrophage activation. While m6A levels remained relatively stable even in the absence of ADAR1, loss of METTL3 led to a global reduction in A-to-I editing levels. This interrelation was most apparent when m6A sites were distant from sites of deamination, suggesting a possible function of m6A in ADAR1-mediated editing. Using a dual reporter cell line where guided ADAR1 recruitment can be measured via eGFP reactivation, we observed that m6A modification of ADAR-engager guide RNAs substantially improved targeted RNA editing. Overall, we report the first example of an interdependence between modifications, which can also be therapeutically exploited.

immunology↗

Precise and efficient C-to-U RNA Base Editing with SNAP-CDAR-S

Site-directed RNA base editing enables the transient and dosable change of genetic information and represents a recent strategy to manipulate cellular processes, paving ways to novel therapeutic modalities. While tools to introduce adenosine-to-inosine changes have been explored quite intensively, the engineering of precise and programmable tools for cytidine-to-uridine editing is somewhat lacking behind. Here we demonstrate that the cytidine deaminase domain evolved from the ADAR2 adenosine deaminase, taken from the RESCUE-S tool, provides very efficient and highly programmable editing when changing the RNA targeting mechanism from Cas13-based to SNAP-tag-based. Optimization of the guide RNA chemistry further allowed to dramatically improve editing yields in the difficult-to-edit 5-CCN sequence context thus improving the substrate scope of the tool. Regarding editing efficiency, SNAP-CDAR-S outcompeted the RESCUE-S tool clearly on all tested targets, and was highly superior in perturbing the {beta}-catenin pathway. NGS analysis showed similar, moderate global off-target A-to-I and C-to-U editing for both tools.

molecular biology↗