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Updated: Jul 9, 2026

Simultaneous Mapping and Quantitation of Ribonucleotides in Human Mitochondrial DNA
Published on: November 14, 2017
Stable PNPase RNAi silencing: its effect on the processing and adenylation of human mitochondrial RNA
Shimyn Slomovic1, Gadi Schuster
1Department of Biology, Technion-Israel Institute of Technology, Haifa 32000, Israel.
Abstract:
Polynucleotide phosphorylase (PNPase) is a diverse enzyme, involved in RNA polyadenylation, degradation, and processing in prokaryotes and organelles. However, in human mitochondria, PNPase is located in the intermembrane space (IMS), where no mitochondrial RNA (mtRNA) is known to be present. In order to determine the nature and degree of its involvement in mtRNA metabolism, we stably silenced PNPase by establishing HeLa cell lines expressing PNPase short-hairpin RNA (shRNA). Processing and polyadenylation of mt-mRNAs were significantly affected, but, to different degrees in different genes. For instance, the stable poly(A) tails at the 3' ends of COX1 transcripts were abolished, while COX3 poly(A) tails remained unaffected and ND5 and ND3 poly(A) extensions increased in length. Despite the lack of polyadenylation at the 3' end, COX1 mRNA and protein accumulated to normal levels, as was the case for all 13 mt-encoded proteins. Interestingly, ATP depletion also altered poly(A) tail length, demonstrating that adenylation of mtRNA can be manipulated by indirect, environmental means and not solely by direct enzymatic activity. When both PNPase and the mitochondrial poly(A)-polymerase (mtPAP) were concurrently silenced, the mature 3' end of ND3 mRNA lacked poly(A) tails but retained oligo(A) extensions. Furthermore, in mtPAP-silenced cells, truncated adenylated COX1 molecules, considered to be degradation intermediates, were present but harbored significantly shorter tails. Together, these results suggest that an additional mitochondrial polymerase, yet to be identified, is responsible for the oligoadenylation of mtRNA and that PNPase, although located in the IMS, is involved, most likely by indirect means, in the processing and polyadenylation of mtRNA.
Insights
Polynucleotide phosphorylase (PNPase) indirectly impacts mitochondrial RNA (mtRNA) processing and polyadenylation, despite its intermembrane space location. Further research is needed to identify the enzyme responsible for mtRNA oligoadenylation.
Area of Science:
- Mitochondrial biology
- RNA metabolism
- Enzymology
Background:
- Polynucleotide phosphorylase (PNPase) is known for RNA processing in prokaryotes and organelles.
- In human mitochondria, PNPase resides in the intermembrane space (IMS), a location unusual for RNA metabolism.
- The precise role of PNPase in mitochondrial RNA (mtRNA) metabolism remains unclear.
Purpose of the Study:
- To investigate the role of PNPase in human mitochondrial RNA (mtRNA) metabolism.
- To determine how silencing PNPase affects mtRNA processing and polyadenylation.
- To explore the mechanisms regulating mtRNA adenylation.
Main Methods:
- Stable silencing of PNPase in HeLa cells using short-hairpin RNA (shRNA).
- Analysis of poly(A) tail lengths and RNA/protein accumulation for specific mt-mRNAs (COX1, COX3, ND5, ND3).
- Concurrent silencing of PNPase and mitochondrial poly(A)-polymerase (mtPAP) to assess combined effects.
Main Results:
- Silencing PNPase differentially affected polyadenylation of mt-mRNAs; COX1 tails were abolished, COX3 unaffected, and ND5/ND3 tails lengthened.
- Despite altered polyadenylation, COX1 mRNA and protein levels remained normal, as did all 13 mt-encoded proteins.
- ATP depletion altered poly(A) tail length, indicating environmental influence on mtRNA adenylation.
- Concurrent silencing of PNPase and mtPAP resulted in ND3 mRNA lacking poly(A) tails but retaining oligo(A) extensions.
- mtPAP silencing led to shorter poly(A) tails on COX1 degradation intermediates.
Conclusions:
- PNPase, despite its IMS location, plays an indirect role in mtRNA processing and polyadenylation.
- An unidentified mitochondrial polymerase is likely responsible for the oligoadenylation of mtRNA.
- mtRNA adenylation is influenced by both direct enzymatic activity and indirect environmental factors.
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