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Updated: Sep 26, 2025

Rapid Isolation of the Mitoribosome from HEK Cells
Published on: October 4, 2018
Phenotype of Mrps5-Associated Phylogenetic Polymorphisms Is Intimately Linked to Mitoribosomal Misreading
Reda Juskeviciene1, Ann-Kristina Fritz2, Margarita Brilkova1
1Institut für Medizinische Mikrobiologie, Universität Zürich, 8006 Zurich, Switzerland.
Abstract:
We have recently identified point mutation V336Y in mitoribosomal protein Mrps5 (uS5m) as a mitoribosomal ram (ribosomal ambiguity) mutation conferring error-prone mitochondrial protein synthesis. In vivo in transgenic knock-in animals, homologous mutation V338Y was associated with a discrete phenotype including impaired mitochondrial function, anxiety-related behavioral alterations, enhanced susceptibility to noise-induced hearing damage, and accelerated metabolic aging in muscle. To challenge the postulated link between Mrps5 V338Y-mediated misreading and the in vivo phenotype, we introduced mutation G315R into the mouse Mrps5 gene as Mrps5 G315R is homologous to the established bacterial ram mutation RpsE (uS5) G104R. However, in contrast to bacterial translation, the homologous G → R mutation in mitoribosomal Mrps5 did not affect the accuracy of mitochondrial protein synthesis. Importantly, in the absence of mitochondrial misreading, homozygous mutant MrpS5G315R/G315R mice did not show a phenotype distinct from wild-type animals.
Insights
A mutation in mitochondrial ribosomal protein Mrps5 (uS5m) did not cause protein synthesis errors in mice. This finding suggests that ribosomal ambiguity mutations do not always lead to observable phenotypes in mammals.
Area of Science:
- Mitochondrial biology
- Molecular genetics
- Ribosome function
Background:
- Mitoribosomal protein Mrps5 (uS5m) plays a crucial role in mitochondrial protein synthesis.
- Ribosomal ambiguity (ram) mutations can confer error-prone translation.
- A previously identified V336Y mutation in Mrps5 was linked to a distinct in vivo phenotype.
Purpose of the Study:
- To investigate the functional consequence of a homologous bacterial ram mutation (G315R) in mouse Mrps5.
- To determine if the G315R mutation affects mitochondrial protein synthesis accuracy.
- To assess the in vivo phenotype of mice carrying the Mrps5 G315R mutation.
Main Methods:
- Introduction of the G315R mutation into the mouse Mrps5 gene via knock-in.
- Assessment of mitochondrial protein synthesis fidelity in mutant mice.
- Phenotypic analysis of homozygous Mrps5 G315R mutant mice.
Main Results:
- The homologous G315R mutation in mouse Mrps5 did not induce mitochondrial protein synthesis errors.
- Unlike bacterial ram mutations, the Mrps5 G315R mutation did not affect translation accuracy.
- Homozygous Mrps5 G315R mutant mice exhibited no distinct phenotype compared to wild-type animals.
Conclusions:
- The G315R mutation in mitoribosomal protein Mrps5 does not function as a ram mutation in mammals.
- Mitochondrial protein synthesis accuracy is not compromised by this specific mutation in mice.
- The absence of a phenotype in Mrps5 G315R mice suggests that not all bacterial ram mutations translate to a functional equivalent in the mammalian mitochondrial system.
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