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R L Dunbrack

Publications and source records attributed to R L Dunbrack.

25 records · Page 2Linked to original sources

Conformational analysis of the backbone-dependent rotamer preferences of protein sidechains.

Amino acids have sidechain rotamer preferences dependent on the backbone dihedral angles phi and psi. These preferences provide a method for rapid structure prediction which is a significant improvement over backbone-independent rotamer libraries. We demonstrate here that simple arguments based on conformational analysis can account for many of the features of the observed backbone dependence of the sidechain rotamers. Steric repulsions corresponding to the 'butane' and 'syn-pentane' effects make certain conformers rare, as has been observed experimentally.

Amino Acids↗

Backbone-dependent rotamer library for proteins. Application to side-chain prediction.

A backbone-dependent rotamer library for amino acid side-chains is developed and used for constructing protein side-chain conformations from the main-chain co-ordinates. The rotamer library is obtained from 132 protein chains in the Brookhaven Protein Database. A grid of 20 degrees by 20 degrees blocks for the main-chain angles phi, psi is used in the rotamer library. Significant correlations are found between side-chain dihedral angle probabilities and backbone phi, psi values. These probabilities are used to place the side-chains on the known backbone in test applications for six proteins for which high-resolution crystal structures are available. A minimization scheme is used to reorient side-chains that conflict with the backbone or other side-chains after the initial placement. The initial placement yields 59% of both chi 1 and chi 2 values in the correct position (to within 40 degrees) for thermolysin to 81% for crambin. After refinement the values range from 61% (lysozyme) to 89% (crambin). It is evident from the results that a single protein does not adequately test a prediction scheme. The computation time required by the method scales linearly with the number of side-chains. An initial prediction from the library takes only a few seconds of computer time, while the iterative refinement takes on the order of hours. The method is automated and can easily be applied to aid experimental side-chain determinations and homology modeling. The high degree of correlation between backbone and side-chain conformations may introduce a simplification in the protein folding process by reducing the available conformational space.

Amino Acid Sequence↗

Phosphorylation-dependent down-modulation of CD4 requires a specific structure within the cytoplasmic domain of CD4.

Several structural features of the cytoplasmic domain of CD4 including phosphorylation of Ser-408 have been shown to be important in its endocytosis (Shin, J., Doyle, C., Yang, Z., Kappes, D., and Strominger, J.L. (1990) EMBO J. 9, 425-434). A series of cytoplasmic domain truncations have now indicated that the membrane proximal region of the cytoplasmic domain from Arg-396 to Lys-417 is sufficient for phorbol ester-induced internalization; this segment is predicted to be an alpha-helix. The severe impairment of endocytosis resulting from the mutation Ser-408 to Ala-408 is largely restored by a compensating mutation Ala-404 to Ser-404; phosphorylation of Ser-404 has been directly demonstrated. Furthermore, mutation of Met-407, Ile-410, Leu-413, or Leu-414 to a hydrophilic residue eliminated CD4 endocytosis as did domain truncation at Arg-412. Ser-408 was normally phosphorylated in all of these mutants, suggesting that other residues in this region, including the four hydrophobic amino acids, are also required for CD4 endocytosis. Immunofluorescence microscopy following staining of intact and permeabilized cells showed that all endocytosis defective mutants indeed remained on the cell surface even after phorbol ester treatment, while wild type CD4 was endocytosed and degraded in lysosomes. These data indicate that endocytosis requiring residues 397-417 and binding of lymphocyte tyrosine kinase at residues 417-429 are functions of independent segments of the cytoplasmic region and lead to a hypothesis regarding some features of the endocytic process.

Amino Acid Sequence↗

Signals for retention of transmembrane proteins in the endoplasmic reticulum studied with CD4 truncation mutants.

A mutant of CD4 (CD4.Q421stop), in which the cytoplasmic C-terminal 13 amino acids were truncated, was not expressed on the surface of HeLa cells after transfection but was retained in the endoplasmic reticulum (ER). Seven other truncation mutants of CD4 were expressed well on the cell surface, thus suggesting that the C-terminal amino acids of CD4.Q421stop (-Ser-Glu-Lys-Lys-Thr-Cys) may have the sequence information for ER retention. Further mutational study has revealed that two consecutive lysine residues at the third and fourth positions from the C-terminal end are sufficient for ER retention. Lysine at the fourth position, but not at the third position, from the C terminus can be replaced by arginine without disturbing ER retention. Furthermore, two lysine residues at the third and fifth positions from the C terminus also resulted in ER retention. Thus lysine at the third position and a positively charged amino acid either at the fourth or fifth position from the C terminus are sufficient for ER retention of this CD4 mutant, and possibly all transmembrane proteins. In addition to the requirement of specific amino acids at specific positions, the ER retention signal -Lys-Lys-Xaa-Xaa also requires a transmembrane region for function. By contrast -Lys-Asp-Glu-Leu, which targets soluble proteins to the lumen of the ER, does not function in the presence of a transmembrane region.

Amino Acid Sequence↗