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Published on: June 25, 2020
Regulated phosphorylation of 40S ribosomal protein S6 in root tips of maize
Alan J Williams1, Joanna Werner-Fraczek, Ing-Feng Chang
1Center for Plant Cell Biology, Department of Botany and Plant Sciences, University of California, Riverside, California 92521-0124, USA.
Abstract:
Ribosomal protein S6 (RPS6) is located in the mRNA binding site of the 40S subunit of cytosolic ribosomes. Two maize (Zea mays) rps6 genes were identified that encode polypeptides (30 kD, 11.4 pI) with strong primary amino acid sequence and predicted secondary structure similarity to RPS6 of other eukaryotes. Maize RPS6 was analyzed by the use of two-dimensional gel electrophoresis systems, in vivo labeling with [(32)P]P(i) and immunological detection. Nine RPS6 isoforms were resolved in a two-dimensional basic-urea/sodium dodecyl sulfate-polyacrylamide gel electrophoresis system. Matrix-assisted laser desorption ionization time-of-flight mass spectrometry performed on trypsin-digested isoforms identified four serine (Ser) and one threonine (Thr) residue in the carboxy-terminal region as phosphorylation sites (RRS(238)KLS(241)AAAKAS(247)AAT(250)S(251)A-COOH). Heterogeneity in RPS6 phosphorylation was a consequence of the presence of zero to five phosphorylated residues. Phosphorylated isoforms fell into two groups characterized by (a) sequential phosphorylation of Ser-238 and Ser-241 and (b) the absence of phospho-Ser-238 and presence of phospho-Ser-241. The accumulation of hyper-phosphorylated isoforms with phospho-Ser-238 was reduced in response to oxygen deprivation and heat shock, whereas accumulation of these isoforms was elevated by cold stress. Salt and osmotic stress had no reproducible effect on RPS6 phosphorylation. The reduction in hyper-phosphorylated isoforms under oxygen deprivation was blocked by okadaic acid, a Ser/Thr phosphatase inhibitor. By contrast, the recovery of hyper-phosphorylated isoforms upon re-oxygenation was blocked by LY-294002, an inhibitor of phosphatidylinositol 3-kinases. Thus, differential activity of phosphatase(s) and kinase(s) determine complex heterogeneity in RPS6 phosphorylation.
Insights
Maize ribosomal protein S6 (RPS6) phosphorylation heterogeneity is regulated by stress conditions. Stress responses involve specific phosphatases and kinases, impacting RPS6 isoform accumulation.
Area of Science:
- Plant molecular biology
- Ribosome biogenesis and function
- Post-translational modifications
Background:
- Ribosomal protein S6 (RPS6) is crucial for protein synthesis and is found in the mRNA binding site of the 40S ribosomal subunit.
- Eukaryotic RPS6 exhibits conserved structure, suggesting similar functions across species.
- Understanding RPS6 regulation in plants like maize (Zea mays) is key to deciphering stress responses.
Purpose of the Study:
- To identify and characterize maize RPS6 isoforms.
- To investigate the phosphorylation sites and heterogeneity of maize RPS6.
- To determine the impact of environmental stresses on RPS6 phosphorylation patterns.
Main Methods:
- Two-dimensional gel electrophoresis for resolving RPS6 isoforms.
- In vivo labeling with radioactive phosphorus [(32)P]P(i) and immunological detection.
- Mass spectrometry to identify phosphorylation sites and analyze isoform heterogeneity.
- Treatment with stress conditions (oxygen deprivation, heat shock, cold, salt, osmotic) and specific inhibitors (okadaic acid, LY-294002).
Main Results:
- Two maize rps6 genes encode similar RPS6 polypeptides.
- Nine RPS6 isoforms were identified, with heterogeneity arising from zero to five phosphorylation sites.
- Specific serine and threonine residues in the carboxy-terminal region were identified as phosphorylation sites.
- Hyper-phosphorylated RPS6 isoforms decreased under oxygen deprivation and heat shock, but increased under cold stress.
- Okadaic acid blocked stress-induced reduction, while LY-294002 blocked recovery, indicating phosphatase and kinase involvement.
Conclusions:
- Maize RPS6 exhibits complex phosphorylation heterogeneity.
- Environmental stresses differentially regulate RPS6 phosphorylation.
- Phosphatase and kinase activities are critical in determining RPS6 phosphorylation states under stress.
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