Cardiac mitochondrial function depends on BUD23 mediated ribosome programming

Author:

Baxter Matthew123ORCID,Voronkov Maria123ORCID,Poolman Toryn123,Galli Gina1,Pinali Christian4,Goosey Laurence1,Knight Abigail1,Krakowiak Karolina1,Maidstone Robert123,Iqbal Mudassar4,Zi Min4,Prehar Sukhpal4,Cartwright Elizabeth J4,Gibbs Julie1,Matthews Laura C5,Adamson Antony D1,Humphreys Neil E1,Rebelo-Guiomar Pedro67,Minczuk Michal7ORCID,Bechtold David A1,Loudon Andrew1,Ray David123

Affiliation:

1. Faculty of Biology, Medicine and Health, University of Manchester, Manchester Academic Health Science Centre, Manchester, United Kingdom

2. Oxford Centre for Diabetes, Endocrinology and Metabolism, University of Oxford, Oxford, United Kingdom

3. NIHR Oxford Biomedical Research Centre, John Radcliffe Hospital, Oxford, United Kingdom

4. Division of Cardiovascular Sciences, University of Manchester, Manchester Academic Health Science Centre, Manchester, United Kingdom

5. Leeds Institute of Medical Research, Faculty of Medicine and Health, University of Leeds, Leeds, United Kingdom

6. Graduate Program in Areas of Basic and Applied Biology (GABBA), University of Porto, Porto, Portugal

7. Medical Research Council Mitochondrial Biology Unit, University of Cambridge, Cambridge, United Kingdom

Abstract

Efficient mitochondrial function is required in tissues with high energy demand such as the heart, and mitochondrial dysfunction is associated with cardiovascular disease. Expression of mitochondrial proteins is tightly regulated in response to internal and external stimuli. Here we identify a novel mechanism regulating mitochondrial content and function, through BUD23-dependent ribosome generation. BUD23 was required for ribosome maturation, normal 18S/28S stoichiometry and modulated the translation of mitochondrial transcripts in human A549 cells. Deletion of Bud23 in murine cardiomyocytes reduced mitochondrial content and function, leading to severe cardiomyopathy and death. We discovered that BUD23 selectively promotes ribosomal interaction with low GC-content 5’UTRs. Taken together we identify a critical role for BUD23 in bioenergetics gene expression, by promoting efficient translation of mRNA transcripts with low 5’UTR GC content. BUD23 emerges as essential to mouse development, and to postnatal cardiac function.

Funder

Medical Research Council

Publisher

eLife Sciences Publications, Ltd

Subject

General Immunology and Microbiology,General Biochemistry, Genetics and Molecular Biology,General Medicine,General Neuroscience

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