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Haight, T.

Publications and source records attributed to Haight, T..

2 recordsLinked to original sources

Differential adenosine to inosine RNA editing of SINE B2 non-coding RNAs in mouse unveils a novel type of epi-transcriptome response to amyloid beta neuro-toxicity

Alzheimers disease (AD) is characterized by early molecular responses to amyloid beta neuro-toxicity that remain poorly defined. RNA editing by adenosine-to-inosine (A-to-I) conversion is a major epitranscriptomic mechanism, yet its contribution to non-coding RNA regulation during neurodegeneration is largely unknown. Short Interspersed Nuclear Element (SINE)-derived RNAs, including mouse B2 RNAs, represent the dominant substrates of A-to-I editing and have recently been shown to regulate gene expression through ribozyme-mediated processing. Here, we introduce and validate a repeat-aware bioinformatics framework that enables position-specific quantification of A-to-I editing within highly repetitive SINE RNAs--an analysis that has been challenging using standard genome-based pipelines. Applying this approach, we uncover discrete editing hotspots in B2 RNAs whose modification is selectively increased during the earliest stages of amyloid beta pathology. Elevated B2 RNA editing is consistently observed across hippocampal or neocortical tissue from two independent mouse models of amyloid beta accumulation and in hippocampal neurons exposed to acute amyloid beta toxicity. Functional perturbation of ADAR activity alters both B2 RNA editing levels and the expression of B2 RNA regulated stress-response genes, directly linking RNA editing to SINE-mediated transcriptional control. Independent validation using Nanopore direct RNA sequencing indicates increased RNA modification signals at the same B2 RNA regions identified by short-read Illumina sequencing. Together, our findings establish a previously unrecognized epitranscriptomic response to amyloid beta neurotoxicity mediated by site-specific A-to-I editing of SINE RNAs. This work defines a new analytical paradigm for studying RNA editing in RNAs from repetitive elements and reveals a regulatory axis connecting amyloid beta toxicity, ADAR activity, SINE RNA editing, and stress-responsive gene expression, with implications for conserved mechanisms underlying Alzheimers disease and related neurodegenerative disorders.

bioinformatics↗

NERD-seq: A novel approach of Nanopore direct RNA sequencing that expands representation of non-coding RNAs

The new next-generation sequencing platforms by Oxford Nanopore Technologies for direct RNA sequencing (direct RNA-seq) allow for an in-depth and comprehensive study of the epitranscriptome by enabling direct base calling of RNA modifications. Non-coding RNAs constitute the most frequently documented targets for RNA modifications. However, the current standard direct RNA-seq approach is unable to detect many of these RNAs. Here we present NERD-seq, a sequencing approach which enables the detection of multiple classes of non-coding RNAs excluded by the current standard approach. Using total RNA from a tissue with high known transcriptional and non-coding RNA activity in mouse, the brain hippocampus, we show that, in addition to detecting polyadenylated coding and non-coding transcripts as the standard approach does, NERD-seq is able to significantly expand the representation for other classes of RNAs such as snoRNAs, snRNAs, scRNAs, srpRNAs, tRNAs, rRFs and non-coding RNAs originating from LINE L1 elements. Thus, NERD-seq presents a new comprehensive direct RNA-seq approach for the study of epitranscriptomes in brain tissues and beyond.

genomics↗