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Biomedical subjects

O Schueler

Publications and source records attributed to O Schueler.

4 recordsLinked to original sources

"Atraumatic" Sprotte needle reduces the incidence of post-lumbar puncture headaches.

Post-lumbar puncture headache (PLPH) is best explained by spinal fluid leakage due to delayed closure of a dural defect. In a prospective, randomized, double-blind study, taking into consideration all known methodological problems, the authors compared the incidence of PLPH using the "atraumatic" Sprotte needle vs the "traumatic" Quincke needle. Of the 230 patients included in the final analysis, 24.4% of patients in the "traumatic" group developed PLPH, whereas only 12.2% of patients in the "atraumatic" group did (p < 0.05). Therefore, use of the "atraumatic" Sprotte needle for lumbar puncture is recommended.

Adult↗

Comprehensive analysis of hydrogen bonds in regulatory protein DNA-complexes: in search of common principles.

A systematic analysis of hydrogen bonds between regulatory proteins and their DNA targets is presented, based on 28 crystallographically solved complexes. All possible hydrogen bonds were screened and classified into different types: those that involve the amino acid side-chains and DNA base edges and those that involve the backbone atoms of the molecules. For each interaction type, all bonds were characterized and a statistical analysis was performed to reveal significant amino acid-base interdependence. The interactions between the amino acid side-chains and DNA backbone constitute about half of the interactions, but did not show any amino acid-base correlation. Interactions via the protein backbone were also observed, predominantly with the DNA backbone. As expected, the most significant pairing preference was demonstrated for interactions between the amino acid side-chains and the DNA base edges. The statistically significant relationships could mostly be explained by the chemical nature of the participants. However, correlations that could not be trivially predicted from the hydrogen bonding potential of the residues were also identified, like the preference of lysine for guanine over adenine, or the preference of glutamic acid for cystosine over adenine. While Lys x G interactions were very frequent and spread over various families, the Glu x C interactions were found mainly in the basic helix-loop-helix family. Further examination of the side-chain-base edge contacts at the atomic level revealed a trend of the amino acids to contact the DNA by their donor atoms, preferably at position W2 in the major groove. In most cases it seems that the interactions are not guided simply by the presence of a required atom in a specific position in the groove, but that the identity of the base possessing this atom is crucial. This may have important implications in molecular design experiments.

Amino Acids↗

Ranking potential binding peptides to MHC molecules by a computational threading approach.

In this paper, an approach developed to address the inverse protein folding problem is applied to prediction of potential binding peptides to a specific major histocompatibility complex (MHC) molecule. Overlapping peptides, spanning the entire protein sequence, are threaded through the backbone coordinates of a known peptide fold in the MHC groove, and their interaction energies are evaluated using statistical pairwise contact potentials. With currently available tables for pairwise potentials, promising results are obtained for MHC-peptide complexes where hydrophobic interactions predominate. By ranking the peptides in an ascending order according to their energy values, it is demonstrated that, in most cases, known antigenic peptides are highly ranked. Furthermore, predicted hierarchies are consistent with experimental binding results. Currently, predictions of potential binding peptides to a specific MHC molecule are based on the identification of allele-specific binding motifs. However, it has been demonstrated that these motifs are neither sufficient nor strictly required to ensure binding. The computational procedure presented here succeeds in determining the MHC binding potential of peptides along a protein amino acid sequence, without relying on binding motifs. The proposed scheme may significantly reduce the number of peptides to be tested, identify good binders that do not necessarily show the known allele-specific binding motifs, and identify the best candidates among those with the motifs. In general, when structural information about a protein-peptide complex is available, the current application of the threading approach can be used to screen a large library of peptides for selection of the best binders to the target protein.

Amino Acid Sequence↗

Conservation of salt bridges in protein families.

A detailed computational analysis is presented that focuses on the relationship between structural attributes and the degree and mode of salt bridge conservation. A data set of conserved and non-conserved salt bridges was constructed from eight protein families, based on the structural alignment of family members. Salt bridges were defined at the secondary structure level rather than at the residue level, implying different possible modes of conservation: preservation (same charges at the same residue positions), compensation (reversal of charges), and complementation (maintenance of a salt bridge between two segments of secondary structures, not involving the same residue positions). Structural attributes such as the surface accessibility, distance from the active site, or type of secondary structures involved, were studied. No significant differences were found between conserved and non-conserved salt bridges, except for the surface accessibility. Conserved salt bridges were shown to be less exposed than non-conserved ones. Moreover, within the set of conserved salt bridges, the degree of conservation was shown to negatively correlate with surface exposure; however, not to an extent that could indicate a general role for electrostatic interactions in the protein interior. Examination of the most conserved salt bridge in each family showed a variety of typical features: Some involved the terminal segments of the protein, some were buried and one involved the catalytic site of the protein. Hence, the role of salt bridges is more specific, probably in fine tuning of a specific structure through the folding process or in determining the functional site. As for the conservation mode, preservations were found to predominate in the conserved interactions, while complementations were of secondary importance. Compensations occurred only rarely and mostly in exposed salt bridges, suggesting that this mechanism is not utilized frequently and especially not in important interactions.

Binding Sites↗