| Literature DB >> 32627736 |
Michel Fodje1, Kiran Mundboth1, Shaunivan Labiuk1, Kathryn Janzen1, James Gorin1, Denis Spasyuk1, Scott Colville1, Pawel Grochulski1.
Abstract
The Canadian Macromolecular Crystallography Facility (CMCF) consists of two beamlines dedicated to macromolecular crystallography: CMCF-ID and CMCF-BM. After the first experiments were conducted in 2006, the facility has seen a sharp increase in usage and has produced a significant amount of data for the Canadian crystallographic community. Upgrades aimed at increasing throughput and flux to support the next generation of more demanding experiments are currently under way or have recently been completed. At CMCF-BM, this includes an enhanced monochromator, automounter software upgrades and a much faster detector. CMCF-ID will receive a major upgrade including a new undulator, a new monochromator and new optics to stably focus the beam onto a smaller sample size, as well as a brand-new detector. open access.Entities:
Keywords: Canadian Light Source; beamline; double crystal/multi-layer monochromator; macromolecular crystallography
Mesh:
Substances:
Year: 2020 PMID: 32627736 PMCID: PMC7336384 DOI: 10.1107/S2059798320007603
Source DB: PubMed Journal: Acta Crystallogr D Struct Biol ISSN: 2059-7983 Impact factor: 7.652
Figure 1Schematic representation of the major components of the Canadian Light Source. The 2.9 GeV storage ring has a circumference of 170.88 m and currently operates with a maximum current of 220 mA. The horizontal emittance is approximately 22.7 nm rad, with a vertical emittance of 0.1017 nm rad. Operational beamlines which can support structural biology and biophysics projects include the Canadian Macromolecular Crystallography Facility (CMCF) and the BioMedical Imaging and Therapy (BMIT), Mid Infrared Spectromicroscopy (MID-IR) and Biological X-ray Absorption Spectroscopy (BioXAS) facilities.
Specifications of the CMCF beamlines before and after the planned upgrades
Flux estimates are shown for a ring current of 220 mA.
| Current CMCF-ID | Planned CMCF-ID | Current CMCF-BM | |
|---|---|---|---|
| Spectral range (keV) | 6.5–18.0 | 5.0–20.0 | 5–20 |
| Energy bandwidth (Δ | |||
| Si(111) | ∼1.5 × 10−4 | ∼1.5 × 10−4 | ∼1.5 × 10−4 |
| DMM | ∼1 × 10−2 (7.2–10.4 keV) | 3.7 × 10−3 (8.1 keV) | |
| Flux on the sample (photons s−1) | |||
| At 12 keV | 2 × 1012 (100 µm) | >1.5 × 1013 (100 µm) | >1.5 × 1011 |
| 1 × 1012 (50 µm) | >1 × 1013 (50 µm) | ||
| 5 × 1011 (20 µm) | >5 × 1012 (20 µm) | ||
| 2 × 1010 (5 µm) | >1 × 1012 (5 µm) | ||
| ∼5 × 1014 (50 µm) DMM | |||
| At 8.1 keV | >1.5 × 1011 Si(111) | ||
| >2.5 × 1012 DMM | |||
| Focal size at 12 keV (µm × µm) | 150 (H) × 30 (V) | 55 (H) × 5 (V) | 210 (H) × 190 (V) |
| Beam crossfire at the sample at 12 keV (no pinhole) (mrad × mrad) | 0.9 (H) × 0.2 (V) | 1.82 (H) × 0.34 (V) | 1.95 (H) × 0.30 (V) |
Figure 2Optical layout of the planned CMCF-ID beamline. Absolute distances of the main components from the centre of the straight section of the ring are also included
Figure 3Result of ray-tracing for the CMCF-ID upgrade performed at 12 keV. Top, beam divergence; bottom, focus spot size at the sample position.
Timeline for the CMCF beamline-upgrade projects
| CMCF-BM | CMCF-ID | |
|---|---|---|
| 2017 |
|
|
| ISARA automouter installed | ||
| 2018 | Preliminary design report completed | |
| 2019 | SAM performance upgrades | All major components procured |
| DCMM monochromator upgrade | Delivery of new IVU, EIGER detector and MD2S microdiffractometer endstation | |
| 2020 | Installation of PILATUS S 6M detector | Shutdown for installation and commissioning |
| 2021 | Full user operations |
Figure 41° s−1 diffraction pattern from a thaumatin crystal using a 100 µm aperture in high-flux mode on CMCF-BM.
Data-collection statistics for a thaumatin test crystal comparing the DCM [Si(111)] and DMM (multi-layer) modes
Owing to the much higher flux for the DMM mode, the lowest available transmission of 10% was used for comparison. Statistics for the highest resolution shell are shown in parentheses. The data were processed using XDS (Kabsch, 2010 ▸) and data quality was assessed using Phenix (Liebschner et al., 2019 ▸).
| Si(111) mode | Multi-layer mode | |
|---|---|---|
| Wavelength (Å) | 1.52 | 1.52 |
| Data collection | 720 frames at 0.5° per 0.5 s | 720 frames at 0.5° per 0.5 s |
| Beam properties | 100 µm aperture, 100% transmission | 100 µm aperture, 10% transmission |
| Resolution range (Å) | 9.948–2.100 (2.174–2.100) | 9.996–2.100 (2.174–2.100) |
| Space group |
|
|
| Unit-cell parameters (Å, °) |
|
|
| Total reflections | 370297 (35371) | 367652 (35140) |
| Unique reflections | 13558 (1318) | 13352 (1297) |
| Multiplicity | 27.3 (26.8) | 27.5 (27.1) |
| Completeness (%) | 98.53 (99.01) | 98.62 (100.0) |
| Mean | 20.06 (3.31) | 26.96 (10.18) |
| Wilson | 30.13 | 23.17 |
|
| 0.1647 (2.326) | 0.1217 (0.8305) |
|
| 0.1678 (2.372) | 0.124 (0.8465) |
|
| 0.03203 (0.4588) | 0.02355 (0.1625) |
| CC1/2 | 0.997 (0.928) | 0.998 (0.986) |