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Inhibition of tRNA fragments dysregulated in human mTLE exacerbates pathology and seizure activity
Noora Puhakka1,2, Vamshidhar R Vangoor1, Andreia Gomes-Duarte1,3
1Department of Translational Neuroscience, University Medical Center Utrecht Brain Center, University Medical Center Utrecht, Utrecht University, 3584 CG, Utrecht, The Netherlands.
Abstract:
Mesial temporal lobe epilepsy (mTLE) is a subtype of focal epilepsy in which approximately one-third of patients develop pharmaco-resistance, likely driven by multiple mechanisms including structural changes and dysregulated non-coding RNAs (ncRNAs). However, our understanding of the contribution of ncRNAs to mTLE pathogenesis remains incomplete, and many classes remain uncharacterized. Notably, transfer RNAs (tRNAs) and their stress-induced fragments are emerging as important regulators of gene expression and candidate fluid-based biomarkers. However, their tissue-level expression and role in disease pathogenesis remain poorly understood. Therefore, in this study we performed profiling of tRNA and tRNA-derived fragments (tRFs), in human hippocampal and cortical samples from hippocampal sclerosis mTLE (mTLE-HS) and non-hippocampal sclerosis mTLE (mTLE non-HS) patients and postmortem controls by total RNA sequencing (RNA-seq) and small non-coding RNA sequencing (sncRNA-seq). Our data reveal widespread changes in the neural expression of pre-tRNA, tRNA and tRF expression in human mTLE brain tissue. One of the most prominent changes observed was a downregulation of 5' fragments derived from tRNA-His-GTG. Knockdown of this tRNA and its 5' fragments combined with total RNA-seq in neuronal cells identified 5'tRNA-His-GTG fragments as strong regulators of gene expression, including of epilepsy-associated genes. For example, Cannabinoid Receptor 1 (CNR1) was identified as a possible downstream target of 5'tRF-His-GTG. To investigate the contribution of 5'tRF-His-GTG to TLE pathogenesis and seizure activity, the increased expression of this tRF that was observed at 24 h after status epilepticus (SE) in mice was targeted using inhibitors. This induced increased seizures and altered network activity, with reduced theta and alpha power bands, and enhanced glial fibrillary acidic protein (GFAP) expression. Together, our study confirms and extends previous findings by identifying widespread changes in human brain tRF expression in mTLE and demonstrates for the first time that tRF manipulation affects seizure activity and mTLE pathology.
Insights
This study reveals widespread changes in transfer RNA fragments (tRFs) in mesial temporal lobe epilepsy (mTLE) brain tissue. Manipulating a specific tRF, 5'tRF-His-GTG, impacts seizure activity and epilepsy pathology.
Area of Science:
- Neuroscience
- Genetics
- Molecular Biology
Background:
- Mesial temporal lobe epilepsy (mTLE) is a focal epilepsy subtype with high rates of drug resistance.
- Non-coding RNAs (ncRNAs), including tRNA-derived fragments (tRFs), are implicated in epilepsy pathogenesis but remain poorly understood.
- Tissue-level expression and function of tRFs in mTLE are largely uncharacterized.
Purpose of the Study:
- To profile tRNA and tRF expression in human mTLE brain tissue.
- To investigate the role of specific tRFs, particularly 5'tRF-His-GTG, in mTLE pathogenesis and seizure activity.
- To explore tRFs as potential therapeutic targets for mTLE.
Main Methods:
- Total RNA sequencing (RNA-seq) and small non-coding RNA sequencing (sncRNA-seq) on human hippocampal and cortical samples from mTLE patients and controls.
- Neuronal cell knockdown experiments with subsequent RNA-seq to identify gene expression changes.
- Inhibition of 5'tRF-His-GTG in a mouse model of status epilepticus (SE) to assess effects on seizure activity and network function.
Main Results:
- Widespread alterations in pre-tRNA, tRNA, and tRF expression were observed in human mTLE brain tissue.
- Downregulation of 5' fragments from tRNA-His-GTG was a prominent finding.
- Knockdown of 5'tRF-His-GTG regulated epilepsy-associated genes, including CNR1, and its inhibition in mice exacerbated seizures and altered brain network activity.
Conclusions:
- This study identifies significant changes in tRF expression in the human mTLE brain.
- 5'tRF-His-GTG acts as a regulator of gene expression and plays a role in mTLE pathology.
- tRF manipulation demonstrates a direct impact on seizure activity, highlighting their potential as therapeutic targets.
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