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The purification of ribosomal RNA gene chromatin from Physarum polycephalum
S A Amero1, R C Ogle, J L Keating
1Department of Biology, University of Virginia, Charlottesville 22901.
Abstract:
We have undertaken the purification of ribosomal RNA gene (rDNA) chromatin from the slime mold Physarum polycephalum, in order to study its chromatin structure. In this organism rDNA exists in nucleoli as highly repeated minichromosomes, and one can obtain crude chromatin fractions highly enriched in rDNA from isolated nucleoli. We first developed a nucleolar isolation method utilizing polyamines as stabilization agents that results in a chromatin fraction containing far more protein than is obtained by the more commonly used divalent cation isolation methods. The latter method appears to result in extensive histone loss during chromatin isolations. Two methods were then used for purifying rDNA chromatin from nucleoli isolated by the polyamine procedure. We found that rDNA chromatin migrates as a single band in agarose gels, well separated from other components in the chromatin preparation. Although the utility of this technique is somewhat limited by low yields and by progressive stripping of protein from rDNA chromatin, it can provide useful information about rDNA chromatin protein composition. The application of this technique to the fractionation of gene and spacer chromatin fragments produced by restriction enzyme digestion is discussed. We also found that rDNA chromatin, if RNase-treated, bands discretely in metrizamide equilibrium density gradients with a density lighter than that of non-nucleolar chromatin. These characteristics suggest that we have identified a transcriptionally active rDNA chromatin fraction which possesses a lower protein to DNA ratio than does non-nucleolar chromatin. This technique yields sufficient purified rDNA chromatin for further biochemical studies and does not cause extensive protein stripping. The procedures developed here should be applicable to the analysis of a variety of chromatin fractions in other systems.
Insights
Researchers purified ribosomal RNA gene (rDNA) chromatin from slime mold, revealing a transcriptionally active fraction with a lower protein-to-DNA ratio. This method aids in studying chromatin structure and protein composition.
Area of Science:
- Molecular Biology
- Cell Biology
- Biochemistry
Background:
- Ribosomal RNA gene (rDNA) chromatin structure is crucial for understanding gene regulation.
- Physarum polycephalum presents a unique model with rDNA organized into nucleolar minichromosomes.
- Existing chromatin isolation methods often lead to protein loss, complicating structural analysis.
Purpose of the Study:
- To develop and optimize methods for purifying rDNA chromatin from Physarum polycephalum.
- To investigate the protein composition and structural characteristics of rDNA chromatin.
- To identify transcriptionally active rDNA chromatin fractions.
Main Methods:
- Developed a novel nucleolar isolation method using polyamines for enhanced protein preservation.
- Employed agarose gel electrophoresis and metrizamide equilibrium density gradients for rDNA chromatin purification and characterization.
- Compared polyamine-based isolation with traditional divalent cation methods.
Main Results:
- The polyamine method yielded a chromatin fraction with significantly higher protein content compared to divalent cation methods.
- Purified rDNA chromatin migrated as a distinct band on agarose gels.
- RNase-treated rDNA chromatin exhibited a lower density in metrizamide gradients, indicative of a transcriptionally active fraction with a reduced protein-to-DNA ratio.
- The developed technique provides sufficient purified rDNA chromatin for biochemical studies without extensive protein loss.
Conclusions:
- A robust method for isolating and purifying rDNA chromatin from Physarum polycephalum was established.
- The study identified a transcriptionally active rDNA chromatin fraction with distinct biochemical properties.
- The findings offer a valuable approach for analyzing chromatin structure and composition in various biological systems.