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Updated: Sep 4, 2026

Eukaryotic Polyribosome Profile Analysis
Published on: June 16, 2010
Differential protein synthesis during sporulation in the slime mold Physarum polycephalum
Abstract:
The size distribution and synthesis of polypeptide chains and the polysome patterns were studied during sporulation of the slime mold Physarum polycephalum, and were compared with nonsporulating controls. The proteins were divided into a 27,000 x g supernatant (buffer-soluble proteins) and a pellet (buffer-insoluble proteins) while still native. The sodium dodecyl sulfate complexes of the denatured proteins were separated on polyacrylamide gels containing urea. The following differences were found between sporulating and nonsporulating cultures. (i) The distribution of the soluble proteins into bands from sporulating and control cultures was the same in stained patterns; however, there was a slight shift toward increased synthesis of larger polypeptide chains in the radioactivity patterns of the soluble proteins in sporulating cultures. (ii) The amount of histones in the sporulating cultures was less than 30% of the values in the controls. Also, histone synthesis was reduced to less than 10% of that in the nonsporulating controls. In addition, proteins in three defined regions, corresponding to molecular weights of 70,000 to 75,000 (I), 55,000 (II), and 41,000 (III), were synthesized in sporulating cultures at a rate at least twice that in controls. Polypeptides corresponding to peaks I and II could be extracted from purified walls of mature spores. (iii) The polysome pattern as revealed by sucrose density centrifugation showed a breakdown of heavy polysomes at 3 hr after illumination, with their reappearance 4 hr later. The latter pattern, however, differed from that of the nonsporulating control in that the amount of light polysomes was reduced. This might account for the reduction in histone synthesis.
Insights
Sporulation in Physarum polycephalum alters protein synthesis, reducing histones and increasing larger polypeptides. Polysome patterns shift, indicating changes in gene expression during this developmental process.
Area of Science:
- Cellular Biology
- Developmental Biology
- Biochemistry
Background:
- Sporulation is a critical developmental process in many organisms.
- Understanding molecular changes during sporulation is key to deciphering differentiation.
Purpose of the Study:
- To investigate changes in protein synthesis and polysome patterns during sporulation of Physarum polycephalum.
- To compare these changes with nonsporulating control cultures.
Main Methods:
- Proteins were fractionated into soluble and insoluble components.
- Sodium dodecyl sulfate polyacrylamide gel electrophoresis (SDS-PAGE) with urea was used to analyze protein size distribution.
- Sucrose density centrifugation was employed to examine polysome patterns.
Main Results:
- Sporulating cultures showed increased synthesis of larger polypeptide chains and reduced histone levels and synthesis.
- Specific proteins (70-75 kDa, 55 kDa, 41 kDa) were synthesized at higher rates in sporulating cultures, with two found in spore walls.
- Polysome patterns exhibited a breakdown and reappearance of heavy polysomes, alongside a reduction in light polysomes.
Conclusions:
- Physarum polycephalum sporulation involves significant alterations in protein synthesis, particularly a decrease in histones and an increase in specific larger proteins.
- Changes in polysome profiles suggest a regulatory mechanism impacting protein synthesis during sporulation.
- Identified spore wall proteins may play a role in spore structure or function.
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