| Literature DB >> 26457431 |
Anna J Warren1, Adam D Crawshaw2, Jose Trincao1, Pierre Aller1, Simon Alcock1, Ioana Nistea1, Paula S Salgado2, Gwyndaf Evans1.
Abstract
The measurement of diffraction data from macromolecular crystal samples held in vacuo holds the promise of a very low X-ray background and zero absorption of incident and scattered beams, leading to better data and the potential for accessing very long X-ray wavelengths (>3 Å) for native sulfur phasing. Maintaining the hydration of protein crystals under vacuum is achieved by the use of liquid jets, as with serial data collection at free-electron lasers, or is side-stepped by cryocooling the samples, as implemented at new synchrotron beamlines. Graphene has been shown to protect crystals from dehydration by creating an extremely thin layer that is impermeable to any exchanges with the environment. Furthermore, owing to its hydrophobicity, most of the aqueous solution surrounding the crystal is excluded during sample preparation, thus eliminating most of the background caused by liquid. Here, it is shown that high-quality data can be recorded at room temperature from graphene-wrapped protein crystals in a rough vacuum. Furthermore, it was observed that graphene protects crystals exposed to different relative humidities and a chemically harsh environment.Entities:
Keywords: dehydration; graphene; room temperature; vacuum
Mesh:
Substances:
Year: 2015 PMID: 26457431 PMCID: PMC4601369 DOI: 10.1107/S1399004715014194
Source DB: PubMed Journal: Acta Crystallogr D Biol Crystallogr ISSN: 0907-4449
Figure 1An optical image of a crystal of thaumatin wrapped in graphene/PMMA mounted within a nylon loop.
Figure 2The experimental setup of the three-dimensionally printed vacuum chamber on beamline I04 at Diamond Light Source. (a) Viewed from above and (b) viewed from the side. The components of the setup have been labelled, where OAV indicates the on-axis viewing system.
Data-processing statistics of thaumatin crystals within the vacuum chamber
A comparison between thaumatin wrapped in graphene/PMMA in air and vacuum and thaumatin in vacuum. Values in parentheses are for the outer shell.
| Graphene/PMMA-wrapped thaumatin in air | Graphene/PMMA-wrapped thaumatin under vacuum | Thaumatin under vacuum | |
|---|---|---|---|
| Graphene/PMMA | X | X | |
| Vacuum | X | X | |
| No. of images used in processing | 485 | 485 | 485 |
| Space group |
|
|
|
| Unit-cell parameters () |
|
|
|
| Resolution range () | 46.571.80 (1.841.80) | 41.781.92 (1.971.92) | 50.792.83 (2.902.83) |
| Total No. of reflections | 86945 (5233) | 73107 (4986) | 19170 (2741) |
| No. of unique reflections | 24715 (1467) | 20125 (1390) | 5790 (800) |
| Completeness (%) | 97.0 (98.4) | 95.9 (98.8) | 99.5 (98.7) |
| Multiplicity | 3.5 (3.6) | 3.6 (3.6) | 3.3 (3.5) |
|
| 9.6 (2.2) | 10.2 (2.0) | 7.3 (2.2) |
|
| 0.080 (0.763) | 0.068 (0.676) | 0.153 (0.699) |
| Overall | 29.1 | 31.4 | 65.9 |
Calculated with the WILSON program in the CCP4 suite (Winn et al., 2011 ▸).
Thaumatin refinement statistics against data from graphene/PMMA-wrapped crystals collected under vacuum
Values in parentheses are for the outer shell.
| Resolution range () | 41.781.92 (1.971.92) |
| Completeness (%) | 95.9 (98.8) |
| No. of reflections, working set | 19143 |
| No. of reflections, test set | 982 |
| Final | 0.146 |
| Final | 0.175 |
| No. of non-H atoms | |
| Protein | 1526 |
| Ligand | 22 |
| Water | 87 |
| Total | 1635 |
| R.m.s. deviations | |
| Bonds () | 0.0222 |
| Angles () | 2.1822 |
| Average | |
| Overall | 38.57 |
| Protein | 37.84 |
| Ligand | 46.78 |
| Water | 49.32 |
| Ramachandran plot | |
| Most favoured (%) | 98.5 |
| Allowed (%) | 1.5 |
Data-processing statistics of GI crystals studied with the HC1b
A comparison between the controls, GI and GI wrapped in graphene/PMMA, with an unwrapped GI crystal and a GI crystal wrapped in graphene/PMMA exposed to a relative humidity of 65%. Although only one data set is shown for each sample, at least three crystals were collected for each scenario; the statistics from all of the crystals can be found in the Supporting Information. All data sets showed a similar trend for each scenario. Values in parentheses are for the outer shell.
| GI | Graphene/PMMA-wrapped GI | GI exposed to 65% RH | Graphene/PMMA-wrapped GI exposed to 65% RH | |
|---|---|---|---|---|
| Graphene/PMMA | X | X | ||
| Relative humidity applied at 65% | X | X | ||
| Space group |
|
|
|
|
| Unit-cell parameters () |
|
|
|
|
| Resolution range () | 29.631.80 (1.851.80) | 67.441.80 (1.851.80) | 32.761.87 (1.911.87) | 69.141.80 (1.851.80) |
| Total No. of reflections | 274203 (19683) | 276968 (20925) | 417412 (26430) | 291841 (21602) |
| No. of unique reflections | 43300 (3099) | 43701 (3216) | 65681 (4206) | 44175 (3229) |
| Completeness (%) | 99.7 (97.2) | 99.9 (99.9) | 100 (100) | 99.9 (99.9) |
| Multiplicity | 6.3 (6.4) | 6.3 (6.5) | 6.4 (6.3) | 6.6 (6.7) |
|
| 26.4 (11.8) | 32.4 (18.4) | 9.4 (2.2) | 28.7 (12.8) |
|
| 0.049 (0.132) | 0.041 (0.078) | 0.288 (0.753) | 0.062 (0.273) |
| Overall | 12.4 | 10.5 | 15.7 | 7.7 |
Data-processing statistics of lysozyme crystals studied with the HC1b
A comparison between the controls, lysozyme and lysozyme wrapped in graphene/PMMA, with an unwrapped lysozyme crystal and a lysozyme crystal wrapped in graphene/PMMA exposed to a relative humidity of 70%. Although only one data set is shown for each sample, at least three crystals were collected for each scenario; the statistics from all of the crystals can be found in the Supporting Information. All data sets showed a similar trend for each scenario, except in the case where a relative humidity of 70% was applied to an unwrapped crystal. In this case seven data sets were collected, all of which showed an increase in the values of R meas and the B factor, and in two of the seven data sets a reduction in the unit cell was also observed. Values in parentheses are for the outer shell.
| Lysozyme | Graphene/PMMA-wrapped lysozyme | Lysozyme exposed to 70% RH | Graphene/PMMA-wrapped lysozyme exposed to 70% RH | |
|---|---|---|---|---|
| Graphene/PMMA | X | X | ||
| Relative humidity applied at 70% | X | X | ||
| Space group |
|
|
|
|
| Unit-cell parameters () |
|
|
|
|
| Resolution range () | 34.891.70 (1.741.70) | 34.141.70 (1.751.70) | 30.642.84 (2.992.84) | 33.701.70 (1.741.70) |
| Total No. of reflections | 157599 (9480) | 157565 (9084) | 28043 (4185) | 160618 (9573) |
| No. of unique reflections | 13018 (908) | 13281 (946) | 2475 (347) | 13233 (942) |
| Completeness (%) | 99.4 (96.8) | 99.9 (99.3) | 99.9 (100) | 99.9 (99.8) |
| Multiplicity | 12.1 (10.4) | 11.9 (9.6) | 11.3 (12.1) | 12.1 (10.2) |
|
| 45.1 (17.9) | 48.5 (29.6) | 18.3 (2.0) | 46.3 (14.2) |
|
| 0.040 (0.104) | 0.048 (0.065) | 0.076 (1.427) | 0.034 (0.137) |
| Overall | 14.0 | 14.4 | 109.9 | 18.4 |
Figure 3Diffraction patterns of thaumatin within the vacuum chamber; the inset in each pattern shows an enlarged area of the diffraction at an approximate resolution range of 6.4–3.7 Å. (a, b) Images 1 and 485, respectively, of crystals of thaumatin wrapped in graphene/PMMA within the chamber in air at atmospheric pressure. (c, d) Images 1 and 485, respectively, of crystals of thaumatin wrapped in graphene/PMMA within the vacuum chamber under vacuum. (e, f) Images 1 and 485, respectively, of crystals of thaumatin within the vacuum chamber under vacuum. All images are displayed with the same contrast levels; (a) and (b) use a 90 × 45 µm aperture to select the beam size, whereas images (c), (d), (e) and (f) use a 20 × 20 µm aperture to define the beam size. Owing to these differences in the setup, as well as the air path between the scatter guard and the entrance window and between the exit window and the beamstop, too much cannot be drawn from the differences in the background scatter. It can be seen, however, that when graphene/PMMA is present around the crystals and they are exposed to vacuum, diffraction remains until the end of data collection when compared with the data collection when the crystals are under vacuum but are not protected by graphene/PMMA.
Figure 4The 2F o − F c map shown at 1.5σ for the structure of thaumatin wrapped in graphene/PMMA exposed to vacuum. The overall thaumatin structure is shown in green and the tartrate ligand is shown in yellow, showing that it is possible to refine the ligand within the structure.
Figure 5Plot of the unit-cell parameters from Table 3 ▸ illustrating how glucose isomerase (GI) crystals wrapped in graphene/PMMA are resistant to reduced humidity environments that would otherwise effect a significant unit-cell dimension contraction and, in this particular case, an associated space-group change from I222 to P21212.
Data-processing statistics of lysozyme crystals when wrapped in graphene/PMMA and soaked in acetone
These statistics can be compared with those in Table 4 ▸.
| Space group |
|
| Unit-cell parameters () |
|
| Resolution range () | 25.622.27 (2.332.27) |
| Total No. of reflections | 56525 (4635) |
| No. of unique reflections | 5095 (403) |
| Completeness (%) | 93.1 (99.9) |
| Multiplicity | 11.1 (11.5) |
|
| 10.2 (2.2) |
|
| 0.150 (0.974) |
| Overall | 99.0 |