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Spatiotemporal Analysis of Cytokinetic Events in Fission Yeast
Published on: February 20, 2017
Regulated phosphorylation of budding yeast's essential myosin V heavy chain, Myo2p
Aster Legesse-Miller1, Sheng Zhang, Felipe H Santiago-Tirado
1Department of Molecular Biology and Genetics, Biotechnology Building, Cornell University, Ithaca, NY 14853, USA.
Abstract:
The tail of the yeast myosin V encoded by Myo2p is known to bind several receptors for cargo delivery along polarized actin cables. However, it is not known how Myo2p activity is regulated or how it selects between cargoes. Here we show that Myo2p is reversibly phosphorylated in vivo. A short peptide at the N-terminal end of the cargo-binding domain contains three residues contributing to single or doubly phosphorylated species. We confirm that the tail consists of two proteolytically resistant subdomains and identify a functionally important region N-terminal to subdomain 1 that includes the phosphorylation sites. Mutagenesis of the phosphorylation sites to alanine abolished a mobility shift diagnostic of phosphorylation, whereas mutagenesis to glutamic acid produced the shift and the formation of an additional phosphorylated species. These substitutions did not affect overall cell growth. However, one of the sites is predicted to be a substrate of cAMP-dependent protein kinase (PKA), and yeast expressing Myo2p with alanine substitutions is resistant to otherwise lethal overexpression of PKA, whereas the glutamic acid mutant is supersensitive to overexpression of PKA. These results suggest that in yeast, Myo2p is subject to phosphoregulation involving a PKA-related signaling pathway.
Insights
Yeast myosin V (Myo2p) is regulated by reversible phosphorylation, impacting its cargo delivery functions. Phosphorylation sites, particularly one linked to protein kinase A (PKA), influence Myo2p activity and cellular response to PKA levels.
Area of Science:
- Cell Biology
- Molecular Biology
- Biochemistry
Background:
- Yeast myosin V (Myo2p) transports cellular components along actin cables.
- Regulation and cargo selection mechanisms for Myo2p remain unclear.
Purpose of the Study:
- To investigate the regulation of Myo2p activity, focusing on phosphorylation.
- To identify the specific phosphorylation sites and their functional significance.
Main Methods:
- In vivo phosphorylation analysis of Myo2p.
- Site-directed mutagenesis to alter phosphorylation residues.
- Assessment of Myo2p mobility shifts and PKA overexpression sensitivity.
Main Results:
- Myo2p undergoes reversible phosphorylation at specific N-terminal residues.
- Mutations at phosphorylation sites alter Myo2p electrophoretic mobility.
- Specific phosphorylation site mutations confer resistance or supersensitivity to PKA overexpression.
Conclusions:
- Myo2p activity is regulated by phosphoregulation.
- A PKA-related signaling pathway influences Myo2p function in yeast.
- Phosphorylation plays a key role in Myo2p-mediated cargo transport and regulation.
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