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Phosphorylation of histidine in proteins by a nuclear extract of Physarum polycephalum plasmodia
Abstract:
A high salt nuclear extract from the true slime mold Physarum polycephalum was used as a source of kinase activity for the incubation of calf thymus histones with [gamma-32P]ATP. A major proportion of the 32P incorporated into histones was acid-labile and alkali-stable. The nature of the alkali-stable phosphorylated component was analyzed by subjecting the phosphorylated protein to total alkaline hydrolysis and separating the resultant phosphoamino acids by anion exchange chromatography. The 32P-labeled material co-chromatographed with phosphohistidine standards and did not co-chromatograph with phosphoserine, phosphothreonine, or phosphotyrosine standards. In similar experiments using reversed phase high-performance liquid chromatography to separate the phosphoamino acids, the 32P-labeled phosphoamino acid behaved like the 1-isomer of phosphohistidine, in not being retained by the column, and unlike 3-phosphohistidine, phosphoserine, phosphothreonine, phosphotyrosine, and phosphoarginine, which were all retained on the column. Histone H4 was a good substrate for the histidine kinase activity and the location of the phosphorylated histidine residue was probed by peptide mapping using chymotrypsin or V8 protease. Both maps were consistent with labeling of histidine 75 and inconsistent with labeling of histidine 18. The data show that Physarum nuclei contain a major kinase activity which produces phosphohistidine. The methods we have developed for studying this kinase activity provide the basis for a complete characterization of the structure and function of the Physarum enzyme and can be applied to the study of similar kinase activities in other systems.
Insights
Physarum polycephalum nuclei possess a kinase that phosphorylates histidine residues in histones. This histidine kinase activity was characterized using advanced chromatography and peptide mapping techniques.
Area of Science:
- Biochemistry
- Molecular Biology
- Cell Biology
Background:
- Kinases play crucial roles in cellular signaling by phosphorylating proteins.
- Phosphorylation typically occurs on serine, threonine, or tyrosine residues.
- Phosphohistidine is a less common but significant post-translational modification.
Purpose of the Study:
- To identify and characterize a novel kinase activity in Physarum polycephalum nuclei.
- To determine the specific amino acid residue phosphorylated by this kinase.
- To establish methods for studying histidine kinase activity in eukaryotic systems.
Main Methods:
- High salt nuclear extract from Physarum polycephalum.
- Incubation of calf thymus histones with [gamma-32P]ATP.
- Acid-labile and alkali-stable hydrolysis of phosphorylated histones.
- Anion exchange and reversed-phase high-performance liquid chromatography (HPLC) for phosphoamino acid analysis.
- Peptide mapping using chymotrypsin and V8 protease.
Main Results:
- A major kinase activity in Physarum nuclei was identified.
- The kinase specifically phosphorylates histidine residues, not serine, threonine, or tyrosine.
- Analysis indicated phosphorylation of histidine 75 in histone H4.
- Developed methods for characterizing histidine kinase activity.
Conclusions:
- Physarum polycephalum nuclei contain a significant histidine kinase.
- Histone H4 is a substrate, with histidine 75 being the primary phosphorylation site.
- The developed methodologies can be applied to study similar kinase activities in other organisms.