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Updated: Jan 23, 2026

Genotyping Single Nucleotide Polymorphisms in the Mitochondrial Genome by Pyrosequencing
Published on: February 10, 2023
The MELAS mutation m.3243A>G alters the expression of mitochondrial tRNA fragments
Salvador Meseguer1, Carmen Navarro-González1, Joaquin Panadero2
1RNA Modification and Mitochondrial Diseases Laboratory, Centro de Investigación Príncipe Felipe (CIPF), Carrer d'Eduardo Primo Yúfera 3, Valencia 46012, Spain.
Abstract:
Recent evidences highlight the importance of mitochondria-nucleus communication for the clinical phenotype of oxidative phosphorylation (OXPHOS) diseases. However, the participation of small non-coding RNAs (sncRNAs) in this communication has been poorly explored. We asked whether OXPHOS dysfunction alters the production of a new class of sncRNAs, mitochondrial tRNA fragments (mt tRFs), and, if so, whether mt tRFs play a physiological role and their accumulation is controlled by the action of mt tRNA modification enzymes. To address these questions, we used a cybrid model of MELAS (mitochondrial encephalomyopathy, lactic acidosis, and stroke-like episodes), an OXPHOS disease mostly caused by mutation m.3243A>G in the mitochondrial tRNALeu(UUR) gene. High-throughput analysis of small-RNA-Seq data indicated that m.3243A>G significantly changed the expression pattern of mt tRFs. A functional analysis of potential mt tRFs targets (performed under the assumption that these tRFs act as miRNAs) indicated an association with processes that involve the most common affected tissues in MELAS. We present evidences that mt tRFs may be biologically relevant, as one of them (mt i-tRF GluUUC), likely produced by the action of the nuclease Dicer and whose levels are Ago2 dependent, down-regulates the expression of mitochondrial pyruvate carrier 1 (MPC1), promoting the build-up of extracellular lactate. Therefore, our study underpins the idea that retrograde signaling from mitochondria is also mediated by mt tRFs. Finally, we show that accumulation of mt i-tRF GluUUC depends on the modification status of mt tRNAs, which is regulated by the action of stress-responsive miRNAs on mt tRNA modification enzymes.
Insights
Mitochondrial tRNA fragments (mt tRFs) are altered in oxidative phosphorylation diseases like MELAS. These mt tRFs play a role in retrograde signaling, impacting disease phenotype and lactate buildup.
Area of Science:
- Mitochondrial biology
- RNA biology
- Genetics
Background:
- Mitochondria-nucleus communication is crucial for oxidative phosphorylation (OXPHAS) diseases.
- The role of small non-coding RNAs (sncRNAs), specifically mitochondrial tRNA fragments (mt tRFs), in this communication is largely unexplored.
- OXPHAS dysfunction may alter mt tRF production and function.
Purpose of the Study:
- Investigate if OXPHAS dysfunction affects mt tRF production.
- Determine the physiological role of mt tRFs.
- Examine if mt tRNA modification enzymes control mt tRF accumulation.
Main Methods:
- Utilized a cybrid MELAS (mitochondrial encephalomyopathy, lactic acidosis, and stroke-like episodes) model with the m.3243A>G mutation.
- Performed high-throughput small-RNA sequencing (small-RNA-Seq) to analyze mt tRF expression.
- Conducted functional analysis of potential mt tRF targets, assuming miRNA-like activity.
Main Results:
- The m.3243A>G mutation significantly altered mt tRF expression patterns.
- Functional analysis suggested mt tRFs target processes relevant to MELAS tissues.
- Identified mt i-tRF GluUUC, dependent on Dicer and Ago2, down-regulates mitochondrial pyruvate carrier 1 (MPC1), increasing extracellular lactate.
- mt i-tRF GluUUC accumulation is linked to mt tRNA modification status, regulated by stress-responsive miRNAs targeting mt tRNA modification enzymes.
Conclusions:
- Retrograde signaling from mitochondria involves mt tRFs.
- mt tRFs contribute to the pathophysiology of OXPHAS diseases like MELAS.
- mt tRNA modification status, influenced by stress-responsive miRNAs, regulates mt tRF levels.
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