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Experimental Approaches to Study Mitochondrial Localization and Function of a Nuclear Cell Cycle Kinase, Cdk1
Published on: February 25, 2016
CDK1 substitutes for mTOR kinase to activate mitotic cap-dependent protein translation
Masahiro Shuda1, Celestino Velásquez1, Erdong Cheng1
1Cancer Virology Program, University of Pittsburgh Cancer Institute, Pittsburgh, PA 15213.
Abstract:
Mitosis is commonly thought to be associated with reduced cap-dependent protein translation. Here we show an alternative control mechanism for maintaining cap-dependent translation during mitosis revealed by a viral oncoprotein, Merkel cell polyomavirus small T (MCV sT). We find MCV sT to be a promiscuous E3 ligase inhibitor targeting the anaphase-promoting complex, which increases cell mitogenesis. MCV sT binds through its Large T stabilization domain region to cell division cycle protein 20 (Cdc20) and, possibly, cdc20 homolog 1 (Cdh1) E3 ligase adapters. This activates cyclin-dependent kinase 1/cyclin B1 (CDK1/CYCB1) to directly hyperphosphorylate eukaryotic initiation factor 4E (eIF4E)-binding protein (4E-BP1) at authentic sites, generating a mitosis-specific, mechanistic target of rapamycin (mTOR) inhibitor-resistant δ phospho-isoform not present in G1-arrested cells. Recombinant 4E-BP1 inhibits capped mRNA reticulocyte translation, which is partially reversed by CDK1/CYCB1 phosphorylation of 4E-BP1. eIF4G binding to the eIF4E-m(7)GTP cap complex is resistant to mTOR inhibition during mitosis but sensitive during interphase. Flow cytometry, with and without sT, reveals an orthogonal pH3(S10+) mitotic cell population having higher inactive p4E-BP1(T37/T46+) saturation levels than pH3(S10-) interphase cells. Using a Click-iT flow cytometric assay to directly measure mitotic protein synthesis, we find that most new protein synthesis during mitosis is cap-dependent, a result confirmed using the eIF4E/4G inhibitor drug 4E1RCat. For most cell lines tested, cap-dependent translation levels were generally similar between mitotic and interphase cells, and the majority of new mitotic protein synthesis was cap-dependent. These findings suggest that mitotic cap-dependent translation is generally sustained during mitosis by CDK1 phosphorylation of 4E-BP1 even under conditions of reduced mTOR signaling.
Insights
Merkel cell polyomavirus small T (MCV sT) protein maintains cap-dependent translation during mitosis by inhibiting E3 ligases, activating CDK1/CYCB1 to phosphorylate 4E-BP1. This ensures protein synthesis continues throughout cell division.
Area of Science:
- Molecular Biology
- Cell Biology
- Virology
Background:
- Mitosis typically reduces cap-dependent translation.
- A viral oncoprotein, MCV sT, reveals an alternative mechanism for translation control during mitosis.
Purpose of the Study:
- To investigate how cap-dependent translation is maintained during mitosis.
- To elucidate the role of MCV sT in regulating translation during cell division.
Main Methods:
- MCV sT as an E3 ligase inhibitor targeting the anaphase-promoting complex.
- Analysis of CDK1/CYCB1 activation and 4E-BP1 hyperphosphorylation.
- Flow cytometry and Click-iT assay to measure protein synthesis during mitosis.
Main Results:
- MCV sT activates CDK1/CYCB1, leading to mitosis-specific 4E-BP1 phosphorylation.
- Mitotic protein synthesis is predominantly cap-dependent, confirmed by 4E1RCat inhibition.
- Cap-dependent translation levels are similar in mitotic and interphase cells.
Conclusions:
- Mitotic cap-dependent translation is sustained by CDK1 phosphorylation of 4E-BP1.
- This mechanism operates independently of mTOR signaling during mitosis.
- MCV sT uncovers a novel pathway for maintaining translation during cell division.
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