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M Kania

Publications and source records attributed to M Kania.

21 records · Page 2Linked to original sources

Structure and synthesis of a lipid-containing bacteriophage. Amphiphilic properties of protein IV of bacteriophage PM2.

Interactions between lipids and the DNA-binding protein (protein IV) purified from bacteriophage PM2 were studied in vitro. The efficiency of incorporation of protein IV into single-walled liposomes was more than 90%. Protein IV embedded in liposomes interacted more strongly with PM2 DNA than protein IV alone. The DNA--protein-IV--liposome complex was relatively stable as observed by sedimentation behavior on a sucrose gradient. The interaction between DNA and the protein-IV--liposome was abolished by tryptic digestion, even though 40% of the protein remained in the vesicle. More than 70% of the amino acids of this embedded peptide segment were hydrophobic. Carboxypeptidase digestion of the protein-IV--liposome caused a release of 20% of the radioactivity of the vesicle without changing the DNA-binding ability of the complexes. Modification of the protein-IV--liposome with the chemical probe, 2,4-dinitrofluorobenzene, and analysis of the tryptic peptides released from the protein-IV--liposome demonstrated that the N-terminal basic amino acid cluster segment responsible for the DNA binding was located on the outer surface of the bilayer. These results support an earlier model in which protein IV anchors itself in the inner leaflet of the PM2 bilayer membrane, interacting with the DNA in the virion.

Bacteriophages↗

Structure and synthesis of a lipid-containing bacteriophage. Studies on the structure of the bacteriophage PM2 nucleocapsid.

The nucleocapsid of bacteriophage PM2, prepared according to Schäfer et al. [Eur. J. Biochem. 92, 579-588 (1978)], was studied by biochemical and biophysical methods. It was not possible to isolate the lipid-free nucleocapsid. More than 95% of the lipids were associated with the nucleocapsid. The asymmetric distribution of phospholipids across the viral membrane was retained in the nucleocapsid since less than 10% of the phosphatidylethanolamine was accessible to the non-penetrable membrane probe, 2,4,6-trinitrobenzenesulfonate. Micro-dissection of the nucleocapsid with thermolysin demonstrated the asymmetric orientation of core proteins across the nucleocapsid membrane. Protein III was embedded deeply in the lipid bilayer and about 20% of the molecule extended to the exterior. Protein IV interacts with PM2 DNA and is partially in the inner leaflet of the bilayer. Small-angle X-ray scattering studies on the nucleocapsid enabled us to localize the lipid bilayer structure at radii from 20.5 nm to 24.0 nm.

Bacteriophages↗

The proteasome: a macromolecular assembly designed to confine proteolysis to a nanocompartment.

Significant progress has been made over the past few years in elucidating the structural principles and the enzymatic mechanism of the 20S proteasome. As a result, the proteasome has become the prototype of a new family of enzymes, the Ntn hydrolases, as well as a paradigm for macromolecular assemblies that confine their proteolytic activity to an inner nanocompartment. Since access to this nanocompartment is restricted to unfolded substrate polypeptides, the 20S proteasome must be functionally linked to a substrate recognition and unfolding machinery. In eukaryotes this is provided by the 19S 'cap' complex, which associates with the 20S core to form the 26S proteasome, a protease capable of degrading ubiquitinated proteins in an ATP-dependent manner.

Amino Acid Sequence↗