m6A RNA methylation regulates mitochondrial function

Author:

Kahl Michael123,Xu Zhaofa123,Arumugam Saravanan123ORCID,Edens Brittany M123,Fischietti Mariafausta45,Zhu Allen C678,Platanias Leonidas C459,He Chuan678,Zhuang Xiaoxi1011ORCID,Ma Yongchao C123ORCID

Affiliation:

1. Departments of Pediatrics , Neurology and Neuroscience, , 303 East Superior Street, Chicago, IL 60611 , United States

2. Northwestern University Feinberg School of Medicine , Neurology and Neuroscience, , 303 East Superior Street, Chicago, IL 60611 , United States

3. Ann & Robert H. Lurie Children’s Hospital of Chicago , 225 East Chicago Avenue, Chicago, IL 60611 , United States

4. Robert H. Lurie Comprehensive Cancer Center , Division of Hematology-Oncology, Department of Medicine, , 303 East Superior Street, Chicago, IL 60611 , United States

5. Northwestern University Feinberg School of Medicine , Division of Hematology-Oncology, Department of Medicine, , 303 East Superior Street, Chicago, IL 60611 , United States

6. Department of Chemistry , Department of Biochemistry and Molecular Biology, and Institute for Biophysical Dynamics, , 5735 South Ellis Avenue, Chicago, IL 60637 , United States

7. The University of Chicago , Department of Biochemistry and Molecular Biology, and Institute for Biophysical Dynamics, , 5735 South Ellis Avenue, Chicago, IL 60637 , United States

8. Howard Hughes Medical Institute, The University of Chicago , 5735 South Ellis Avenue, Chicago, IL 60637 , United States

9. Department of Medicine, Jesse Brown Veterans Affairs Medical Center , 924 East 57th Street, Chicago, IL 60612 , United States

10. Department of Neurobiology , and Committee on Neurobiology, , 924 East 57th Street, Chicago, IL 60637 , United States

11. The University of Chicago , and Committee on Neurobiology, , 924 East 57th Street, Chicago, IL 60637 , United States

Abstract

Abstract RNA methylation of N6-methyladenosine (m6A) is emerging as a fundamental regulator of every aspect of RNA biology. RNA methylation directly impacts protein production to achieve quick modulation of dynamic biological processes. However, whether RNA methylation regulates mitochondrial function is not known, especially in neuronal cells which require a high energy supply and quick reactive responses. Here we show that m6A RNA methylation regulates mitochondrial function through promoting nuclear-encoded mitochondrial complex subunit RNA translation. Conditional genetic knockout of m6A RNA methyltransferase Mettl14 (Methyltransferase like 14) by Nestin-Cre together with metabolomic analysis reveals that Mettl14 knockout-induced m6A depletion significantly downregulates metabolites related to energy metabolism. Furthermore, transcriptome-wide RNA methylation profiling of wild type and Mettl14 knockout mouse brains by m6A-Seq shows enrichment of methylation on mitochondria-related RNA. Importantly, loss of m6A leads to a significant reduction in mitochondrial respiratory capacity and membrane potential. These functional defects are paralleled by the reduced expression of mitochondrial electron transport chain complexes, as well as decreased mitochondrial super-complex assembly and activity. Mechanistically, m6A depletion decreases the translational efficiency of methylated RNA encoding mitochondrial complex subunits through reducing their association with polysomes, while not affecting RNA stability. Together, these findings reveal a novel role for RNA methylation in regulating mitochondrial function. Given that mitochondrial dysfunction and RNA methylation have been increasingly implicate in neurodegenerative disorders, our findings not only provide insights into fundamental mechanisms regulating mitochondrial function, but also open up new avenues for understanding the pathogenesis of neurological diseases.

Funder

NIH

Mary J. C. Hendrix Outstanding Graduate Student Award

Stanley Manne Children's Research Institute

Children's Research Fund

Publisher

Oxford University Press (OUP)

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