| Literature DB >> 23056307 |
Louise Rundqvist1, Tobias Tengel, Janusz Zdunek, Erik Björn, Jürgen Schleucher, Marcos J C Alcocer, Göran Larsson.
Abstract
BACKGROUND: TheEntities:
Mesh:
Substances:
Year: 2012 PMID: 23056307 PMCID: PMC3464261 DOI: 10.1371/journal.pone.0046435
Source DB: PubMed Journal: PLoS One ISSN: 1932-6203 Impact factor: 3.240
Figure 1Solution structure of Ber e 1.
a) Stereo view of the backbone of the 12 lowest energy structures after energy minimization. b) Cartoon representation of the Ber e 1 structure, with the different structure elements colored as follows: green = helix 1a, cyan = helix 1b, yellow = helix 2, pink = helix 3, blue = helix 4. c) Location of the hydrophobic cavity in Ber e 1. The structure has been rotated 90 degrees with respect to figure 1a and b.
Structural statistics of the 12 lowest energy structures.
| NMR derived constraints | Number of constraints |
| Total distances (NOE) | 1038 |
| Intraresidual distances (i = j) | 606 |
| Sequential distances (|i−j| = 1) | 329 |
| Short range distances (1<|i−j|≤4) | 92 |
| Long range distances (|i−j|>4) | 11 |
| Dihedral angle restraints | 226 |
| J-coupling constant restraints | 80 |
| Chemical shifts for CA/CB | 166 |
Figure 2Theroretical pepsin cleavage sites and solvent exposed residues.
a) Theoretical pepsin cleavage sites (red) mapped on the tertiary structure of Ber e 1. b) Exposed surface area of the N and HN atoms in the backbone of Ber e 1. Residues able to undergo pepsin cleavage are highlighted in red. The secondary structure elements, as well as the cysteine linkage are indicated in the top of the figure. Most of the theoretical pepsin cleavage sites are buried within the α-helices. The only surface exposed pepsin cleavage sites are located in the non-native loop and the C-terminal, and cleavage at these positions would not disrupt the integrity of the structure.
Figure 3Ber e 1 backbone dynamics.
a) Residue-specific overall tumbling time (τm) values for 77 of 114 residues. The relatively uniform τm values indicate isotropic tumbling of Ber e 1. b) Order parameter, S2, of the N-H bond vector on a per residue basis. An S2 value of 1 equals a completely rigid N-H vector, whereas an S2 value of 0 implies complete rotational freedom of the N-H vector. Some flexibility is observed in the hypervariable loop, and the N- and C-terminal, as well as the non-native loop show high flexibility. c) Rex parameter, showing the residues where µs-ms dynamics could be identified. Slow dynamics is largely located to the interface of helix 1b and 2, as well as at the end of helix 3, leading into the hypervariable loop. The secondary structure elements, as well as the cysteine linkage are indicated in the top of each figure.
ICP analysis of Cu2+ content.
| [Ber e 1] (µM) before dialysis | [Ber e 1] (µM) after dialysis | [CuCl2] (µM) before dialysis | [CuCl2] (µM) after dialysis | Ratio Ber e 1: Cu2+ | |
| Ber e 1+CuCl2 | 116 | 28.0 | 1160 | 21.0 | 4∶3 |
| Ber e 1 | 116 | - | - | 1.78 | 65∶1 |
Figure 4Ber e 1 copper interaction.
a) Paramagnetic copper relaxation enhancement experiment on Ber e 1. The spectrum shown in black is recorded in the absence of copper, whereas the spectrum shown in red has copper added in a 1∶1 (Cu2+:Ber e 1) stoichiometry. N-H groups in the backbone affected by paramagnetic relaxation enhancement by the addition of Cu2+ in a 1∶1 ration are HIS 20, CYS 21, ARG 22, TYR 24, GLU 43, HIS 45, SER 47, GLU 48, CYS 49, and GLN 52. In addition N-H groups form sidechains (s.c) of GLN 11, 13, 28 and 83 are also affected by Cu2+ at this stoichiometric ratio. b) A model of the copper atom positioning in Ber e 1, based on the nearby residues identified in (a). The N-H backbone groups that are bleached are indicated in the structure as orange rods. c) Due to the slow dynamics around the copper binding site, the copper atom is engulfed into the core of the protein. Interestingly, its position is very close to the bottom of the hydrophobic cavity.
Figure 5Electrostatic surface potential of the Ber e 1 in absence and presence of Cu2+.
a) Electrostatic surface potential of the Ber e 1 at pH 7 in absence of Cu2+. b) Electrostatic surface potential of the Ber e 1 at pH 7 in presence of Cu2+. The entry of the hydrophobic cavity is highlighted with a yellow square. The protein shows an overall positive charge on the side of the protein that comprises the hypervariable loop and the entry to the hydrophobic cavity. In contrast, the other side of the protein, in particular helix 1a and most of helix 1b and 2, is negatively charged. The presence of histidines, taken together with the slow dynamics and the overall negative charge between helix 1b and 2, suggests that Cu2+ would enter the molecule from the negatively charged side of the protein. However, binding of Cu2+ only to a small degree changed the net surface charge on the helix 1b-2 side of the protein. The largest difference in surface potential is observed within the hydrophobic cavity; tuning the surface potential inside the cavity from neutral to more positive charge.