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Messenger RNA delivery to mitoribosomes - hints from a bacterial toxin
Francesco Bruni1,2, Yasmin Proctor-Kent1, Robert N Lightowlers3
1The Wellcome Centre for Mitochondrial Research, Institute of Neuroscience, Newcastle University, UK.
The FEBS Journal
|April 25, 2020
Summary
Mitochondrial mRNA (mt-mRNA) stability depends on mitoribosome assembly. Depleting the large subunit causes mt-mRNA loss, but restoring the small subunit recovers levels, revealing a novel loading pathway.
Area of Science:
- Mitochondrial biology
- Molecular genetics
- Gene expression
Background:
- Messenger RNA (mRNA) processing and maturation occur in mitochondrial RNA granules in mammals.
- The mechanism for transferring mature mRNA to the mitoribosome for translation remains largely unknown.
- The LRPPRC/SLIRP complex is involved in maintaining mt-mRNA stability when the small mitoribosomal subunit fails to assemble.
Purpose of the Study:
- To investigate the role of mitoribosomal subunits in mt-mRNA stability and translation initiation.
- To elucidate the pathway for loading processed mt-mRNA onto the mitoribosome.
Main Methods:
- Utilized the bacterial ribotoxin VapC20 to selectively inhibit mitoribosome function.
- Depleted specific mitoribosomal subunits (large and small) to observe effects on mt-mRNA levels.
- Quantified mt-mRNA species under different mitoribosomal assembly conditions.
Main Results:
- Selective loss of mt-mRNA species was observed in the absence of the large mitoribosomal subunit.
- Depletion of both large and small subunits led to the recovery of mt-mRNA levels.
- These findings suggest a dependence of mt-mRNA stability on the complete mitoribosome structure.
Conclusions:
- The study proposes a novel pathway for loading processed mt-mRNA onto the mitoribosome.
- Mitoribosome assembly, particularly the presence of the large subunit, is critical for mt-mRNA stability.
- The findings provide new insights into mitochondrial gene expression regulation.
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