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Y Harpaz

Publications and source records attributed to Y Harpaz.

3 recordsLinked to original sources

Volume changes on protein folding.

BACKGROUND: Protein volumes change very little on folding at low pressure, but at high pressure the unfolded state is more compact. So far, the molecular origins of this behaviour have not been explained: it is the opposite of that expected from the model of the hydrophobic effect based on the transfer of non-polar solutes from water to organic solvent. RESULTS: We redetermined the mean volumes occupied by residues in the interior of proteins. The new residue volumes are smaller than those given by previous calculations which were based on much more limited data. They show that the packing density in protein interiors is exceptionally high. Comparison of the volumes that residues occupy in proteins with those they occupy in solution shows that aliphatic groups have smaller volumes in protein interiors than in solution, while peptide and charged groups have larger volumes. The cancellation of these volume changes is the reason that the net change on folding is very small. CONCLUSIONS: The exceptionally high density of the protein interior shown here implies that packing forces play a more important role in protein stability than has been believed hitherto.

Amino Acid Sequence↗

Many of the immunoglobulin superfamily domains in cell adhesion molecules and surface receptors belong to a new structural set which is close to that containing variable domains.

On the basis of similarities in sequence and structure, the protein domains that form the immunoglobulin superfamily have been divided into three sets: one with variable-like domains, the V set, and two with different variants of the constant-like domains, the C1 and C2 sets. Examination of a muscle member of the immunoglobulin superfamily, telokin, shows that its structure is closely related to those of the variable domains found in antibodies, CD2, CD4 and CD8. However, it also contains structural features that, previously, have only been found in constant domains. Telokin represents a new structural set in the superfamily which we call the I set. Using the structures of telokin, and variable domains from antibodies, CD4 and CD8, we constructed a profile that describes the sequence characteristics of the structural core common to those proteins. This sequence profile makes a good match to the sequences of many of the immunoglobulin superfamily domains that form the cell adhesion molecules and surface receptors. This match implies that these domains also have structures that belong to the I set.

Amino Acid Sequence↗

Direct observation of better hydration at the N terminus of an alpha-helix with glycine rather than alanine as the N-cap residue.

The structural basis for the stability of N termini of helices has been analyzed by thermodynamic and crystallographic studies of three suitably engineered mutants of the barley chymotrypsin inhibitor 2 with Ser, Gly, or Ala at the N-cap position (residue 31). Each mutant has a well-organized shell of hydration of the terminal NH groups of the helix. The three structures are virtually superimposable (rms separations for all atoms, including the common water molecules, are 0.15-0.17 A) and show neither changes in conformation at the site of substitution nor changes in the crystal packing. The only changes on going from Ser-31 to Ala-31 to Gly-31 are in the position of a water molecule (Wat-116). This is bound to the Ser-O gamma atom in the Ser-31 structure but is in a weak hydrogen bonding position with the NH of residue 34 (O ... N = 3.28 A) in the Ala-31 mutant, partly replacing the strong Ser-31-O gamma ... N34 hydrogen bond (O ... N = 2.65 A). The corresponding water molecule completely replaces the Ser hydroxyl hydrogen bond to N34 on mutation to Gly (2.74 A). The only other change between the three structures is an additional water molecule in the Ala-31 structure (Wat-150) that partly compensates for the weak Wat-116 ... N34 hydrogen bond. Perturbation of solvation by the side chain of Ala is consistent with earlier hypotheses on the importance of exposure of the termini of helices to the aqueous solvent.

Alanine↗