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Updated: May 8, 2026

Quantitative Immunofluorescence to Measure Global Localized Translation
Published on: August 22, 2017
The effect of small molecules on nuclear-encoded translation diseases
Devorah Soiferman1, Oshrat Ayalon2, Sarah Weissman2
1Monique and Jacques Roboh Department of Genetic Research, Hadassah-Hebrew University Medical Center, Jerusalem, Israel; Department of Genetics and Metabolic Diseases, Hadassah-Hebrew University Medical Center, Jerusalem, Israel.
Abstract:
The five complexes of the mitochondrial respiratory chain (MRC) supply most organs and tissues with ATP produced by oxidative phosphorylation (OXPHOS). Inherited mitochondrial diseases affecting OXPHOS dysfunction are heterogeneous; symptoms may present at any age and may affect a wide range of tissues, with many diseases giving rise to devastating multisystemic disorders resulting in neonatal death. Combined respiratory chain deficiency with normal complex II accounts for a third of all respiratory deficiencies; mutations in nuclear-encoded components of the mitochondrial translation machinery account for many cases. Although mutations have been identified in over 20 such genes and our understanding of the mitochondrial translation apparatus is increasing, to date no definitive cure for these disorders exists. We evaluated the effect of seven small molecules with reported therapeutic potential in fibroblasts of four patients with combined respiratory complex disorders, each harboring a known mutation in a different nuclear-encoded component of the mitochondrial translation machinery: EFTs, GFM1, MRPS22 and TRMU. Six mitochondrial parameters were screened as follows; growth in glucose-free medium, reactive oxygen species (ROS) production, ATP content, mitochondrial content, mitochondrial membrane potential and complex IV activity. It was clearly evident that each patient displayed an individual response and there was no universally beneficial compound. AICAR increased complex IV activity in GFM1 cells and increased ATP content in MRPS22 fibroblasts but was detrimental to TRMU, who benefitted from bezafibrate. Two antioxidants, ascorbate and N-acetylcysteine (NAC), significantly improved cell growth, ATP content and mitochondrial membrane potential and decreased levels of intracellular reactive oxygen species (ROS) in EFTs fibroblasts. This study presents an expanded repertoire of assays that can be performed using the microtiter screening system with a small number of patients' fibroblasts and highlights some therapeutic options while providing additional evidence for the importance of personalized medicine in mitochondrial disorders.
Insights
No single drug effectively treats mitochondrial translation defects. Personalized medicine approaches are crucial, as different patients respond uniquely to various compounds like antioxidants, highlighting the need for tailored therapies for these complex genetic disorders.
Area of Science:
- Biochemistry
- Genetics
- Cell Biology
Background:
- Mitochondrial respiratory chain (MRC) complexes produce ATP via oxidative phosphorylation (OXPHOS).
- Inherited mitochondrial diseases causing OXPHOS dysfunction are diverse, often leading to severe multisystemic disorders.
- Mutations in nuclear-encoded mitochondrial translation factors are a significant cause of combined respiratory chain deficiencies.
Purpose of the Study:
- To evaluate the therapeutic potential of small molecules in patient-derived fibroblasts with mutations in mitochondrial translation machinery.
- To screen six mitochondrial parameters to assess compound efficacy.
- To investigate the feasibility of personalized medicine for mitochondrial disorders.
Main Methods:
- Fibroblasts from four patients with distinct mutations (EFTs, GFM1, MRPS22, TRMU) in nuclear-encoded mitochondrial translation components were used.
- Seven small molecules with reported therapeutic potential were tested.
- Six assays were performed: cell growth in glucose-free medium, reactive oxygen species (ROS) production, ATP content, mitochondrial content, mitochondrial membrane potential, and complex IV activity.
Main Results:
- Each patient's cells showed an individual response to the tested compounds; no universal therapeutic agent was identified.
- AICAR improved complex IV activity in GFM1 cells and ATP content in MRPS22 cells but was toxic to TRMU cells.
- Bezafibrate benefited TRMU cells, while ascorbate and N-acetylcysteine (NAC) improved cell growth, ATP content, mitochondrial membrane potential, and reduced ROS in EFTs cells.
Conclusions:
- Personalized therapeutic strategies are essential for treating mitochondrial translation disorders.
- Specific compounds like bezafibrate, AICAR, ascorbate, and NAC show potential for targeted treatment based on individual genetic mutations.
- This study demonstrates a microtiter screening system for evaluating drug efficacy in patient-derived cells, supporting personalized medicine for mitochondrial diseases.
Related Concept Videos
Translation
Translation is the process of synthesizing proteins from the genetic information carried by messenger RNA (mRNA). Following transcription, it constitutes the final step in the expression of genes. This process is carried out by ribosomes, complexes of protein and specialized RNA molecules. Ribosomes, transfer RNA (tRNA), and other proteins produce a chain of amino acids—the polypeptide—as the end product of translation.
Translation Produces the Building Blocks of Life
Translation
Translation is the process of synthesizing proteins from the genetic information carried by messenger RNA (mRNA). Following transcription, it constitutes the final step in the expression of genes. This process is carried out by ribosomes, complexes of protein and specialized RNA molecules. Ribosomes, transfer RNA (tRNA), and other proteins produce a chain of amino acids—the polypeptide—as the end product of translation.
Translation Produces the Building Blocks of Life
Nuclear Export of mRNA
Nuclear Export of mRNA
Translational Regulation
Leaky Scanning

